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Science Citation Index Expanded",{"EN":62,"VI":63},"SCIE database","Cơ sở dữ liệu SCIE","scie",[66,67],"SCIE","ISI","https:\u002F\u002Fmjl.clarivate.com\u002Fsearch-results?issn=2311-6706",[70,71,72],"0db73426-2364-455f-81a4-efe0f91d712e","884e2057-a88e-448b-b35b-6fd5f2133797","0a89cee9-2df6-4b14-8fcb-700fd0044c25",{"id":74,"indexDatabase":75,"url":85,"indexYears":86,"academicFieldIds":87,"indexDatabaseRanking":92},"cc4ca65d-7901-44ca-8179-42e5bd709f09",{"id":76,"createTime":18,"updateTime":18,"relativeEntities":77,"label":78,"description":80,"key":82,"publicationTags":83,"standard":18},"3c7051d4-eb7d-4c57-a56b-36fc74c5d1e9",[],{"EN":79,"VI":79},"Scopus - Elsevier",{"EN":79,"VI":81},"Cơ sở dữ liệu Scopus thuộc Elsevier","scopus",[84],"SCOPUS","https:\u002F\u002Fwww.scopus.com\u002Fsourceid\u002F21100203115","2009-2025",[88,89,90,91],"a81768cc-7885-48eb-a85a-170d5a0a5f4f","bde499af-4b10-4113-bda6-98dab0900d4d","0e6bd987-5c67-4e9a-8af2-07c289f5e45c","1ecff757-a023-4b19-bdfb-1a30a5bece6b","SCOPUS__Q1",{"impactFactor":19,"impactFactorByYear":94,"i10Index":97,"i10IndexLast5Year":97,"totalPublication":98,"totalPublicationByYear":99,"totalCitation":100,"totalCitationByYear":101,"totalCitationPerPublication":102,"totalCitationPerPublicationByYear":103,"hindexLast5Year":97,"hindex":97},{"2020":95,"2021":96},18,11,1,2,{"2014":97,"2019":97},67,{"2019":100},33.5,{"2019":100},"JOURNAL",{"meta":106,"data":108},{"total":107},"1066",[109,303,513,1680,1897,2101,2732,2996,3106,3307],{"id":110,"createTime":111,"updateTime":112,"relativeEntities":113,"slug":114,"properties":115,"entityType":125,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":126,"viewCount":19,"primaryUrl":128,"fullTextUrl":18,"authors":129,"publicationType":244,"publisherRelationship":245,"citationCount":18,"citationInfo":18,"publishDate":299,"publishYear":300,"citationAnalyzeStatus":17,"lastCitationAnalyze":18,"indexDatabases":301,"openAccess":18,"references":18,"isForceReanalyzing":302},"6013c885-8b58-4f0e-bce7-ffdb508d3155","2024-01-20T15:18:16.862+00:00","2026-09-08T09:15:55.810+00:00",[],"Fabrication-Characterization-and-Thermophysical-Property-Evaluation-of-SiC-Nanofluids-for-Heat-Transfer-Applications",{"abstract":116,"title":118,"references":121,"doi":123},{"EN":117},"Nanofluids (NFs) are nanotechnology-based colloidal suspensions fabricated by suspending nanoparticles (NPs) in a base liquid. These fluids have shown potential to improve the heat transfer properties of conventional heat transfer fluids. In this study we report in detail on fabrication, characterization and thermo-physical property evaluation of SiC NFs, prepared using SiC NPs with different crystal structures, for heat transfer applications. For this purpose, a series of SiC NFs containing SiC NPs with different crystal structure (α-SiC and β-SiC) were fabricated in a water (W)\u002Fethylene glycol (EG) mixture (50\u002F50 wt% ratio). Physicochemical properties of NPs\u002FNFs were characterized by using various techniques, such as powder X-ray diffraction (XRD), scanning electron microscopy (SEM), transmission electron microscopy (TEM), Fouriertransform infrared spectroscopy (FTIR), dynamic light scattering (DLS) and Zeta potential analysis. Thermo-physical properties including thermal conductivity (TC) and viscosity for NFs containing SiC particles (α- and β- phase) weremeasured. The results show among all suspensions NFs fabricated with α-SiC particles have more favorable thermo-physical properties compared to the NFs fabricated with β-SiC.The observed difference is attributed to combination of several factors, including crystal structure (β- vs. α-), sample purity, and residual chemicals exhibited on SiCNFs. A TC enhancement of ∼20% while 14% increased viscosity were obtained for NFs containing 9 wt% of particular type of α-SiC NPs indicating promising capability of this kind of NFs for further heat transfer characteristics investigation.",{"EN":119,"VI":120},"Fabrication, Characterization and Thermophysical Property Evaluation of SiC Nanofluids for Heat Transfer Applications","Chế tạo, đặc trưng hóa và đánh giá tính chất nhiệt vật lý của chất lỏng nano SiC cho các ứng dụng truyền nhiệt",{"VOID":122},"Q. X. Wang and A. S. Mujumdar, “A Review on nanofluids—Part I: Theoretical and numerical investigations”, Braz. J. Chem. 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Fluid Sci. 34(6), 677–683 (2010). http:\u002F\u002Fdx.doi.org\u002F10.1016\u002Fj.expthermflusci.2009.12.009",{"VOID":124},"10.1007\u002FBF03353782","PUBLICATION",[127],"VI","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002FBF03353782",[130,146,159,174,188,202,216,230],{"id":131,"sortIndex":19,"researcher":18,"roles":132,"affiliations":134,"properties":143,"displayName":145,"givenName":18,"familyName":18},"57a77208-b9a7-4e4c-9018-c772b9d433e8",[133],"AUTHOR",[135],{"id":136,"sortIndex":19,"affiliation":137,"properties":18},"3eaaf2a5-1efe-415d-bd5d-20cd176c31fe",{"id":136,"createTime":18,"updateTime":18,"relativeEntities":138,"slug":18,"properties":139,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":142,"statistic":18},[],{"title":140},{"VI":141},"Department of Materials and Nano Physics, KTH Royal Institute of Technology, Kista-Stockholm, Sweden",[],{"title":144},{"VI":145},"Nader Nikkam",{"id":147,"sortIndex":97,"researcher":18,"roles":148,"affiliations":149,"properties":156,"displayName":158,"givenName":18,"familyName":18},"4eb528b6-c8af-4b45-90db-d5a431963426",[133],[150],{"id":136,"sortIndex":19,"affiliation":151,"properties":18},{"id":136,"createTime":18,"updateTime":18,"relativeEntities":152,"slug":18,"properties":153,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":155,"statistic":18},[],{"title":154},{"VI":141},[],{"title":157},{"VI":158},"Mohsin Saleemi",{"id":160,"sortIndex":98,"researcher":18,"roles":161,"affiliations":162,"properties":171,"displayName":173,"givenName":18,"familyName":18},"74e72572-a679-4d40-9daf-759b24bbef85",[133],[163],{"id":164,"sortIndex":19,"affiliation":165,"properties":18},"a8abdbad-5921-46a6-8ced-7fd270664aaa",{"id":164,"createTime":18,"updateTime":18,"relativeEntities":166,"slug":18,"properties":167,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":170,"statistic":18},[],{"title":168},{"VI":169},"Department of Energy Technology, KTH Royal Institute of Technology, Stockholm, Sweden",[],{"title":172},{"VI":173},"Ehsan B. Haghighi",{"id":175,"sortIndex":176,"researcher":18,"roles":177,"affiliations":178,"properties":185,"displayName":187,"givenName":18,"familyName":18},"9309c469-0690-49c5-8b80-7802217f4994",3,[133],[179],{"id":164,"sortIndex":19,"affiliation":180,"properties":18},{"id":164,"createTime":18,"updateTime":18,"relativeEntities":181,"slug":18,"properties":182,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":184,"statistic":18},[],{"title":183},{"VI":169},[],{"title":186},{"VI":187},"Morteza Ghanbarpour",{"id":189,"sortIndex":190,"researcher":18,"roles":191,"affiliations":192,"properties":199,"displayName":201,"givenName":18,"familyName":18},"1fc43a5c-a391-4028-9cc3-67c28fa47d60",4,[133],[193],{"id":164,"sortIndex":19,"affiliation":194,"properties":18},{"id":164,"createTime":18,"updateTime":18,"relativeEntities":195,"slug":18,"properties":196,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":198,"statistic":18},[],{"title":197},{"VI":169},[],{"title":200},{"VI":201},"Rahmatollah Khodabandeh",{"id":203,"sortIndex":204,"researcher":18,"roles":205,"affiliations":206,"properties":213,"displayName":215,"givenName":18,"familyName":18},"7d426ec1-c23d-429b-8195-53725ed90cde",5,[133],[207],{"id":136,"sortIndex":19,"affiliation":208,"properties":18},{"id":136,"createTime":18,"updateTime":18,"relativeEntities":209,"slug":18,"properties":210,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":212,"statistic":18},[],{"title":211},{"VI":141},[],{"title":214},{"VI":215},"Mamoun Muhammed",{"id":217,"sortIndex":218,"researcher":18,"roles":219,"affiliations":220,"properties":227,"displayName":229,"givenName":18,"familyName":18},"2ced81e6-42c5-437f-8c3e-05090d7efbdb",6,[133],[221],{"id":164,"sortIndex":19,"affiliation":222,"properties":18},{"id":164,"createTime":18,"updateTime":18,"relativeEntities":223,"slug":18,"properties":224,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":226,"statistic":18},[],{"title":225},{"VI":169},[],{"title":228},{"VI":229},"Björn Palm",{"id":231,"sortIndex":232,"researcher":18,"roles":233,"affiliations":234,"properties":241,"displayName":243,"givenName":18,"familyName":18},"90f042b8-81c5-4b03-91a5-974c4c9096fe",7,[133],[235],{"id":136,"sortIndex":19,"affiliation":236,"properties":18},{"id":136,"createTime":18,"updateTime":18,"relativeEntities":237,"slug":18,"properties":238,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":240,"statistic":18},[],{"title":239},{"VI":141},[],{"title":242},{"VI":243},"Muhammet S. Toprak","ARTICLE",{"url":128,"publisher":246,"properties":294},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":247,"slug":10,"properties":248,"entityType":16,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":19,"subjectFields":251,"manageAffiliations":268,"indexDatabases":274,"url":18,"thumbnailPath":18,"statistic":289,"gsStatistic":18,"type":104,"analyzePriority":18},[],{"issn":249,"title":250},{"VOID":13},{"EN":15},[252,256,260,264],{"id":22,"createTime":18,"updateTime":18,"relativeEntities":253,"label":254,"description":255,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":25},{},{"id":28,"createTime":18,"updateTime":18,"relativeEntities":257,"label":258,"description":259,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":31},{},{"id":34,"createTime":18,"updateTime":18,"relativeEntities":261,"label":262,"description":263,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":37},{},{"id":40,"createTime":18,"updateTime":18,"relativeEntities":265,"label":266,"description":267,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":43},{},[269],{"id":47,"createTime":18,"updateTime":18,"relativeEntities":270,"slug":18,"properties":271,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":273,"statistic":18},[],{"title":272},{"EN":51},[],[275,282],{"id":55,"indexDatabase":276,"url":68,"indexYears":18,"academicFieldIds":281,"indexDatabaseRanking":18},{"id":57,"createTime":18,"updateTime":18,"relativeEntities":277,"label":278,"description":279,"key":64,"publicationTags":280,"standard":18},[],{"EN":60,"VI":60},{"EN":62,"VI":63},[66,67],[70,71,72],{"id":74,"indexDatabase":283,"url":85,"indexYears":86,"academicFieldIds":288,"indexDatabaseRanking":92},{"id":76,"createTime":18,"updateTime":18,"relativeEntities":284,"label":285,"description":286,"key":82,"publicationTags":287,"standard":18},[],{"EN":79,"VI":79},{"EN":79,"VI":81},[84],[88,89,90,91],{"impactFactor":19,"impactFactorByYear":290,"i10Index":97,"i10IndexLast5Year":97,"totalPublication":98,"totalPublicationByYear":291,"totalCitation":100,"totalCitationByYear":292,"totalCitationPerPublication":102,"totalCitationPerPublicationByYear":293,"hindexLast5Year":97,"hindex":97},{"2020":95,"2021":96},{"2014":97,"2019":97},{"2019":100},{"2019":100},{"pages":295,"volume":297},{"VOID":296},"178-189",{"VOID":298},"6","2014-03-20",2014,[66,92],false,{"id":304,"createTime":305,"updateTime":306,"relativeEntities":307,"slug":308,"properties":309,"entityType":125,"verifyStatus":319,"verifyTime":320,"verifyNote":321,"languages":18,"translateLanguages":322,"viewCount":19,"primaryUrl":323,"fullTextUrl":18,"authors":324,"publicationType":244,"publisherRelationship":456,"citationCount":18,"citationInfo":18,"publishDate":510,"publishYear":511,"citationAnalyzeStatus":17,"lastCitationAnalyze":18,"indexDatabases":512,"openAccess":18,"references":18,"isForceReanalyzing":302},"10048aa2-e336-4abd-9630-25a1f245e71b","2023-12-07T04:02:52.941+00:00","2026-09-05T11:26:53.173+00:00",[],"Bioinspired-MXene-Based-User-Interactive-Electronic-Skin-for-Digital-and-Visual-Dual-Channel-Sensing",{"abstract":310,"title":312,"references":315,"doi":317},{"EN":311},"\n                \n                  \n                    \n                  \n                  \n                    \n                  \n                  \n                    \n                  \n                \n               User-interactive electronic skin (e-skin) that could convert mechanical stimuli into distinguishable outputs displays tremendous potential for wearable devices and health care applications. However, the existing devices have the disadvantages such as complex integration procedure and lack of the intuitive signal display function. Here, we present a bioinspired user-interactive e-skin, which is simple in structure and can synchronously achieve digital electrical response and optical visualization upon external mechanical stimulus. The e-skin comprises a conductive layer with a carbon nanotubes\u002Fcellulose nanofibers\u002FMXene nanohybrid network featuring remarkable electromechanical behaviors, and a stretchable elastomer layer, which is composed of silicone rubber and thermochromic pigments. Furthermore, the conductive nanohybrid network with outstanding Joule heating performance can generate controllable thermal energy under voltage input and then achieve the dynamic coloration of silicone-based elastomer. Especially, such an innovative fusion strategy of digital data and visual images enables the e-skin to monitor human activities with evermore intuition and accuracy. The simple design philosophy and reliable operation of the demonstrated e-skin are expected to provide an ideal platform for next-generation flexible electronics. \n                \n                  \n                \n              ",{"EN":313,"VI":314},"Bioinspired MXene-Based User-Interactive Electronic Skin for Digital and Visual Dual-Channel Sensing","Da điện tử tương tác người dùng dựa trên MXene lấy cảm hứng sinh học cho cảm biến xúc giác kênh đôi kỹ thuật số và hình ảnh",{"VOID":316},"D. Jung, C. Lim, H.J. Shim, Y. Kim, C. Park et al., Highly conductive and elastic nanomembrane for skin electronics. Science 373(6558), 1022–1026 (2021). https:\u002F\u002Fdoi.org\u002F10.1126\u002Fscience.abh4357\nA. Chortos, J. Liu, Z. Bao, Pursuing prosthetic electronic skin. Nat. 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Zhang et al., Highly conductive, light weight, robust, corrosion-resistant, scalable, all-fiber based current collectors for aqueous acidic batteries. Adv. Energy Mater. 8(9), 1702615 (2018). https:\u002F\u002Fdoi.org\u002F10.1002\u002Faenm.201702615\nW. Tian, A. VahidMohammadi, Z. Wang, L. Ouyang, M. Beidaghi et al., Layer-by-layer self-assembly of pillared two-dimensional multilayers. Nat. Commun. 10, 2558 (2019). https:\u002F\u002Fdoi.org\u002F10.1038\u002Fs41467-019-10631-0\nH. An, T. Habib, S. Shah, H. Gao, M. Radovic et al., Surface-agnostic highly stretchable and bendable conductive MXene multilayers. Sci. Adv. 4(3), eaaq0118 (2018). https:\u002F\u002Fdoi.org\u002F10.1126\u002Fsciadv.aaq0118\nW.T. Cao, C. Ma, D.S. Mao, J. Zhang, M.G. Ma et al., MXene-reinforced cellulose nanofibril inks for 3D-printed smart fibres and textiles. Adv. Funct. Mater. 29(51), 1905898 (2019). https:\u002F\u002Fdoi.org\u002F10.1002\u002Fadfm.201905898\nW. Cao, C. Ma, S. Tan, M. Ma, P. 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Hoenders et al., Electrical switching of high-performance bioinspired nanocellulose nanocomposites. Nat. Commun. 12, 1312 (2021). https:\u002F\u002Fdoi.org\u002F10.1038\u002Fs41467-021-21599-1\nT.H. Park, S. Yu, M. Koo, H. Kim, E.H. Kim et al., Shape-adaptable 2D titanium carbide (MXene) heater. ACS Nano 13(6), 6835–6844 (2019). https:\u002F\u002Fdoi.org\u002F10.1021\u002Facsnano.9b01602\nD. Liu, Y. Gao, Y. Song, H. Zhu, L. Zhang et al., Highly sensitive multifunctional electronic skin based on nanocellulose\u002FMXene composite films with good electromagnetic shielding biocompatible antibacterial properties. Biomacromol 23(1), 182–195 (2022). https:\u002F\u002Fdoi.org\u002F10.1021\u002Facs.biomac.1c01203\nD.J. Yao, Z. Tang, L. Zhang, Z.G. Liu, Q.J. Sun et al., A highly sensitive, foldable and wearable pressure sensor based on MXene-coated airlaid paper for electronic skin. J. Mater. Chem. C 9(37), 12642–12649 (2021). https:\u002F\u002Fdoi.org\u002F10.1039\u002Fd1tc02458b\nL. Bi, Z. Yang, L. Chen, Z. Wu, C. Ye, Compressible AgNWs\u002FTi(3)C(2)T(x) MXene aerogel-based highly sensitive piezoresistive pressure sensor as versatile electronic skins. J. Mater. Chem. A 8(38), 20030–20036 (2020). https:\u002F\u002Fdoi.org\u002F10.1039\u002Fd0ta07044k\nJ. Guo, Y. Yu, H. Zhang, L. Sun, Y. Zhao, Elastic MXene hydrogel microfiber-derived electronic skin for joint monitoring. ACS Appl. Mater. Interfaces 13(40), 47800–47806 (2021). https:\u002F\u002Fdoi.org\u002F10.1021\u002Facsami.1c10311\nJ. Guo, Y. Yu, D. Zhang, H. Zhang, Y. Zhao, Morphological hydrogel microfibers with MXene encapsulation for electronic skin. Research 2021, 7065907 (2021). https:\u002F\u002Fdoi.org\u002F10.34133\u002F2021\u002F7065907\nJ. Zhang, L. Wan, Y. Gao, X. Fang, T. Lu et al., Highly stretchable and self-healable MXene\u002Fpolyvinyl alcohol hydrogel electrode for wearable capacitive electronic skin. Adv. Electron. 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               \n                  \n                    \n                  \n                  \n                    \n                  \n                  \n                    \n                  \n                \n               Reducing the dimensions of metallic nanoparticles to isolated, single atom has attracted considerable attention in heterogeneous catalysis, because it significantly improves atomic utilization and often leads to distinct catalytic performance. Through extensive research, it has been recognized that the local coordination environment of single atoms has an important influence on their electronic structures and catalytic behaviors. In this review, we summarize a series of representative systems of single-atom catalysts, discussing their preparation, characterization, and structure–property relationship, with an emphasis on the correlation between the coordination spheres of isolated reactive centers and their intrinsic catalytic activities. We also share our perspectives on the current challenges and future research promises in the development of single-atom catalysis. 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However, to unlock the full potential of HEMTs, the fabrication of large-size flexible HEMTs is required. Herein, a large-sized (> 2 cm2) of AlGaN\u002FAlN\u002FGaN heterostructure-based HEMTs were successfully stripped from sapphire substrate to a flexible polyethylene terephthalate substrate by an electrochemical lift-off technique. The piezotronic effect was then induced to optimize the electron transport performance by modulating\u002Ftuning the physical properties of two-dimensional electron gas (2DEG) and phonons. The saturation current of the flexible HEMT is enhanced by 3.15% under the 0.547% tensile condition, and the thermal degradation of the HEMT was also obviously suppressed under compressive straining. The corresponding electrical performance changes and energy diagrams systematically illustrate the intrinsic mechanism. This work not only provides in-depth understanding of the piezotronic effect in tuning 2DEG and phonon properties in GaN HEMTs, but also demonstrates a low-cost method to optimize its electronic and thermal properties.\n                \n                  \n                \n              ",{"EN":1690},"Epitaxial Lift-Off of Flexible GaN-Based HEMT Arrays with Performances Optimization by the Piezotronic Effect",{"VOID":1692},"[\"17806780905900585107\"]",{"VOID":1694},"T. Liu, D. Li, H. Hu, X. Huang, Z. Zhao et al., Piezo-phototronic effect in InGaN\u002FGaN semi-floating micro-disk LED arrays. Nano Energy 67, 104218 (2019). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.nanoen.2019.104218\nX. Wang, W. Peng, R. Yu, H. Zou, Y. Dai et al., Simultaneously enhancing light emission and suppressing efficiency droop in GaN microwire-based ultraviolet light-emitting diode by the piezo-phototronic effect. 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               \n                  \n                    \n                  \n                  \n                    \n                  \n                  \n                    \n                  \n                \n               Respiratory monitoring plays a pivotal role in health assessment and provides an important application prospect for flexible humidity sensors. However, traditional humidity sensors suffer from a trade-off between deformability, sensitivity, and transparency, and thus the development of high-performance, stretchable, and low-cost humidity sensors is urgently needed as wearable electronics. Here, ultrasensitive, highly deformable, and transparent humidity sensors are fabricated based on cost-effective polyacrylamide-based double network hydrogels. Concomitantly, a general method for preparing hydrogel films with controllable thickness is proposed to boost the sensitivity of hydrogel-based sensors due to the extensively increased specific surface area, which can be applied to different polymer networks and facilitate the development of flexible integrated electronics. In addition, sustainable tapioca rich in hydrophilic polar groups is introduced for the first time as a second cross-linked network, exhibiting excellent water adsorption capacity. Through the synergistic optimization of structure and composition, the obtained hydrogel film exhibits an ultrahigh sensitivity of 13,462.1%\u002F%RH, which is unprecedented. Moreover, the hydrogel film-based sensor exhibits excellent repeatability and the ability to work normally under stretching with even enhanced sensitivity. As a proof of concept, we integrate the stretchable sensor with a specially designed wireless circuit and mask to fabricate a wireless respiratory interruption detection system with Bluetooth transmission, enabling real-time monitoring of human health status. This work provides a general strategy to construct high-performance, stretchable, and miniaturized hydrogel-based sensors as next-generation wearable devices for real-time monitoring of various physiological signals.\n                \n                  \n                \n              ",{"EN":1907},"Humidity Sensing of Stretchable and Transparent Hydrogel Films for Wireless Respiration Monitoring",{"VOID":1909},"[\"12895201046721293302\"]",{"VOID":1911},"D. Jung, C. Lim, H.J. Shim, Y. Kim, C. Park et al., Highly conductive and elastic nanomembrane for skin electronics. Science 373, 1022–1026 (2021). https:\u002F\u002Fdoi.org\u002F10.1126\u002Fscience.abh4357\nM. Xie, K. Hisano, M. Zhu, T. Toyoshi, M. Pan et al., Flexible multifunctional sensors for wearable and robotic applications. Adv. Mater. Technol. 4, 1800626 (2019). https:\u002F\u002Fdoi.org\u002F10.1002\u002Fadmt.201800626\nY. Xiong, Y. Shen, L. Tian, Y. Hu, P. Zhu et al., A flexible, ultra-highly sensitive and stable capacitive pressure sensor with convex microarrays for motion and health monitoring. Nano Energy 70, 104436 (2020). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.nanoen.2019.104436\nH. Xu, Y. Xie, E. Zhu, Y. Liu, Z. Shi et al., Supertough and ultrasensitive flexible electronic skin based on nanocellulose\u002Fsulfonated carbon nanotube hydrogel films. J. Mater. Chem. A 8, 6311–6318 (2020). https:\u002F\u002Fdoi.org\u002F10.1039\u002FD0TA00158A\nD. Zhao, Y. Zhu, W. Cheng, W. Chen, Y. Wu et al., Cellulose-based flexible functional materials for emerging intelligent electronics. Adv. Mater. 33, e2000619 (2021). https:\u002F\u002Fdoi.org\u002F10.1002\u002Fadma.202000619\nT. Li, X. Peng, P. Cui, G. Shi, W. Yang et al., Recent progress and future perspectives of flexible metal-air batteries. SmartMat 2, 519–553 (2021). https:\u002F\u002Fdoi.org\u002F10.1002\u002Fsmm2.1076\nP. Tan, H. Wang, F. Xiao, X. Lu, W. Shang et al., Solution-processable, soft, self-adhesive, and conductive polymer composites for soft electronics. Nat. Commun. 13, 1–12 (2022). https:\u002F\u002Fdoi.org\u002F10.1038\u002Fs41467-022-28027-y\nC. Ma, M.G. Ma, C. Si, X.X. Ji, P. Wan, Flexible MXene-based composites for wearable devices. Adv. Funct. Mater. 31, 2009524 (2021). https:\u002F\u002Fdoi.org\u002F10.1002\u002Fadfm.202009524\nY. Wang, X. Zhang, J. Cao, X. Huang, X. Zhang, Multifunctional e-textiles based on biological phytic acid-doped polyaniline\u002Fprotein fabric nanocomposites. Adv. Mater. Technol. 6, 2100003 (2021). https:\u002F\u002Fdoi.org\u002F10.1002\u002Fadmt.202100003\nC. Wang, K. Xia, H. Wang, X. Liang, Z. Yin et al., Advanced carbon for flexible and wearable electronics. Adv. Mater. 31, e1801072 (2019). https:\u002F\u002Fdoi.org\u002F10.1002\u002Fadma.201801072\nW. Zhang, B. Wu, S. Sun, P. Wu, Skin-like mechanoresponsive self-healing ionic elastomer from supramolecular zwitterionic network. Nat. 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               \n                  \n                    \n                  \n                  \n                    \n                  \n                  \n                    \n                  \n                \n               Phase change materials (PCMs) can be used for efficient thermal energy harvesting, which has great potential for cost-effective thermal management and energy storage. However, the low intrinsic thermal conductivity of polymeric PCMs is a bottleneck for fast and efficient heat harvesting. Simultaneously, it is also a challenge to achieve a high thermal conductivity for phase change nanocomposites at low filler loading. Although constructing a three-dimensional (3D) thermally conductive network within PCMs can address these problems, the anisotropy of the 3D framework usually leads to poor thermal conductivity in the direction perpendicular to the alignment of fillers. Inspired by the interlaced structure of spider webs in nature, this study reports a new strategy for fabricating highly thermally conductive phase change composites (sw-GS\u002FPW) with a 3D spider web (sw)-like structured graphene skeleton (GS) by hydrothermal reaction, radial freeze-casting and vacuum impregnation in paraffin wax (PW). The results show that the sw-GS hardly affected the phase transformation behavior of PW at low loading. Especially, sw-GS\u002FPW exhibits both high cross-plane and in-plane thermal conductivity enhancements of ~ 1260% and ~ 840%, respectively, at an ultra-low filler loading of 2.25 vol.%. The thermal infrared results also demonstrate that sw-GS\u002FPW possessed promising applications in battery thermal management.\n                \n                  \n                \n              ",{"EN":2111},"Spider Web-Inspired Graphene Skeleton-Based High Thermal Conductivity Phase Change Nanocomposites for Battery Thermal 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Jiao, Q. Wang et al., Vertically aligned and interconnected graphene networks for high thermal conductivity of epoxy composites with ultralow loading. Chem. Mater. 28(17), 6096–6104 (2016). https:\u002F\u002Fdoi.org\u002F10.1021\u002Facs.chemmater.6b01595","https:\u002F\u002Fdoi.org\u002F10.1021\u002Facs.chemmater.6b01595",{"mag":2336,"openalex":2337,"doi":2338},"2509202796","W2509202796","10.1021\u002Facs.chemmater.6b01595",{"id":2340,"text":2341,"url":2342,"identifiers":2343},"1f8f1a20-d33a-4999-a911-edb035d9f223","S. Wu, T. Yan, Z. Kuai, W. Pan, Thermal conductivity enhancement on phase change materials for thermal energy storage: a review. Energy Storage Mater. 25, 251–295 (2020). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.ensm.2019.10.010","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS2405829719310062",{"doi":2344},"10.1016\u002Fj.ensm.2019.10.010",{"id":18,"text":2346,"url":2347,"identifiers":2348},"P. Min, J. Liu, X. Li, F. An, P. 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Mesoporous materials offer an attractive route for generating efficient electrocatalysts with high mass transport capabilities. Herein, we report an efficient hard templating pathway to design and synthesize three-dimensional (3-D) mesoporous ternary nickel iron nitride (Ni3FeN). The as-synthesized electrocatalyst shows good OER performance in an alkaline solution with low overpotential (259 mV) and a small Tafel slope (54 mV dec−1), giving superior performance to IrO2 and RuO2 catalysts. The highly active contact area, the hierarchical porosity, and the synergistic effect of bimetal atoms contributed to the improved electrocatalytic performance toward OER. In a practical rechargeable Zn–air battery, mesoporous Ni3FeN is also shown to deliver a lower charging voltage and longer lifetime than RuO2. This work opens up a new promising approach to synthesize active OER electrocatalysts for energy-related devices.\n                \n                  \n                \n              ",{"EN":2742},"Mesoporous Ternary Nitrides of Earth-Abundant Metals as Oxygen Evolution Electrocatalyst",{"VOID":2744},"[\"9352737267352375539\"]",{"VOID":2746},"J. Cao, K. Wang, J. Chen, C. Lei, B. Yang et al., Nitrogen-doped carbon-encased bimetallic selenide for high-performance water electrolysis. Nano-Micro Lett. 11(1), 67 (2019). https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs40820-019-0299-4\nY.J. Wang, B. Fang, X. Wang, A. Ignaszak, Y. Liu, A. Li, L. Zhang, J. Zhang, Recent advancements in the development of bifunctional electrocatalysts for oxygen electrodes in unitized regenerative fuel cells (URFCs). Prog. Mater. Sci. 98, 108–167 (2018). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.pmatsci.2018.06.001\nN. Yu, W. Cao, M. Huttula, Y. Kayser, P. 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Tilley, Electrochemical study of the energetics of the oxygen evolution reaction at nickel iron (oxy) hydroxide catalysts. J. Phys. Chem. C 119(33), 19022–19029 (2015). https:\u002F\u002Fdoi.org\u002F10.1021\u002Facs.jpcc.5b05861\nG. Fu, X. Yan, Y. Chen, L. Xu, D. Sun, J.M. Lee, Y. Tang, Boosting bifunctional oxygen electrocatalysis with 3D graphene aerogel-supported Ni\u002FMnO particles. Adv. Mater. 30(5), 1704609 (2018). https:\u002F\u002Fdoi.org\u002F10.1002\u002Fadma.201704609\nB. Fang, J.H. Kim, M.S. Kim, J.S. Yu, Hierarchical nanostructured carbons with meso–macroporosity: design, characterization, and applications. Acc. Chem. Res. 46(7), 1397–1406 (2013). https:\u002F\u002Fdoi.org\u002F10.1021\u002Far300253f\nW.B. Hua, X.D. Guo, Z. Zheng, Y.J. Wang, B.H. Zhong, B. Fang, J.Z. Wang, S.L. Chou, H. Liu, Uncovering a facile large-scale synthesis of LiNi1\u002F3Co1\u002F3Mn1\u002F3O2 nanoflowers for high power lithium-ion batteries. J. Power Sources 275, 200–206 (2015). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jpowsour.2014.09.178\nB. Fang, M.S. Kim, J.H. Kim, S. Lim, J.S. Yu, Ordered multimodal porous carbon with hierarchical nanostructure for high Li storage capacity and good cycling performance. J. Mater. Chem. 20(45), 10253–10259 (2010). https:\u002F\u002Fdoi.org\u002F10.1039\u002FC0JM01387K\nJ.H. Kim, B. Fang, M. Kim, J.S. Yu, Hollow spherical carbon with mesoporous shell as a superb anode catalyst support in proton exchange membrane fuel cell. Catal. Today 146(1–2), 25–30 (2009). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.cattod.2009.02.013\nB. Fang, J.H. Kim, C. Lee, J.S. Yu, Hollow macroporous core\u002Fmesoporous shell carbon with a tailored structure as a cathode electrocatalyst support for proton exchange membrane fuel cells. J. Phys. Chem. C 112(2), 639–645 (2008). https:\u002F\u002Fdoi.org\u002F10.1021\u002Fjp710193s\nR.D. Smith, M.S. Prévot, R.D. Fagan, S. Trudel, C.P. 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Mater. 27(13), 1606325 (2017). https:\u002F\u002Fdoi.org\u002F10.1002\u002Fadfm.201606325\nJ. Hu, C. Zhang, L. Jiang, H. Lin, Y. An, D. Zhou, M.K. Leung, S. Yang, Nanohybridization of MoS2 with layered double hydroxides efficiently synergizes the hydrogen evolution in alkaline media. Joule 1(2), 383–393 (2017). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.joule.2017.07.011\nD. Gu, Y. Zhou, R. Ma, F. Wang, Q. Liu, J. Wang, Facile synthesis of N-doped graphene-like carbon nanoflakes as efficient and stable electrocatalysts for the oxygen reduction reaction. Nano-Micro Lett. 10, 29 (2018). https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs40820-017-0181-1\nZ. Li, Z. Zhuang, F. Lv, H. Zhu, L. Zhou, M. Luo, J. Zhu, Z. Lang, S. Feng, W. Chen, L. Mai, The marriage of the FeN4 moiety and MXene boosts oxygen reduction catalysis: Fe3d electron delocalization matters. Adv. 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work presents an investigation of nanoribbons cut from β\n                12-borophene sheets by applying the density functional theory. In particular, the electronic and magnetic properties of borophene nanoribbons (BNR) are studied. It is found that all the ribbons considered in this work behave as metals, which is in good agreement with the recent experimental results. β\n                12-BNR has significant diversity due to the existence of five boron atoms in a unit cell of the sheet. The magnetic properties of the ribbons are strongly dependent on the cutting direction and edge profile. It is interesting that a ribbon with a specific width can behave as a normal or a ferromagnetic metal with magnetization at just one edge or two edges. Spin anisotropy is observed in some ribbons, and the magnetic moment is not found to be the same in both edges in an antiferromagnetic configuration. This effect stems from the edge asymmetry of the ribbons and results in the breaking of spin degeneracy in the band structure. Our findings show that β\n                12 BNRs are potential candidates for next-generation spintronic devices. \n                \n                  \n                    \n                  \n                \n              ",{"EN":3006},"Edge-Dependent Electronic and Magnetic Characteristics of Freestanding β 12-Borophene Nanoribbons",{"VOID":3008},"[\"9702013696724959596\"]",{"VOID":3010},"A.J. Mannix, X.-F. Zhou, B. Kiraly, J.D. Wood, D. Alducin et al., Synthesis of borophenes: anisotropic, two-dimensional boron polymorphs. Science 350(6267), 1513–1516 (2015). doi:10.1126\u002Fscience.aad1080\nB. Feng, J. Zhang, Q. Zhong, W. Li, S. Li et al., Experimental realization of two-dimensional boron sheets. Nat. Chem. 8(6), 563–568 (2016). doi:10.1038\u002Fnchem.2491\nX. Wu, J. Dai, Y. Zhao, Z. Zhuo, J. Yang, X.C. Zeng, Two-dimensional boron monolayer sheets. ACS Nano 6(8), 7443–7453 (2012). doi:10.1021\u002Fnn302696v\nZ. Zhang, A.J. Mannix, Z. Hu, B. Kiraly, N.P. Guisinger, M.C. 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C 4(26), 6380 (2016). doi:10.1039\u002FC6TC01328G",{"VOID":3012},"10.1007\u002Fs40820-017-0167-z","2024-06-24T19:29:06.424+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs40820-017-0167-z",[3016,3033],{"id":3017,"sortIndex":19,"researcher":18,"roles":3018,"affiliations":3019,"properties":3028,"displayName":3030,"givenName":18,"familyName":18},"ee9ca4f9-1de0-4008-b810-d3fd47b9a46c",[133],[3020],{"id":3021,"sortIndex":19,"affiliation":3022,"properties":18},"f6fb4695-1a0d-4701-868a-ac7b1d15c7a1",{"id":3021,"createTime":18,"updateTime":18,"relativeEntities":3023,"slug":18,"properties":3024,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":3027,"statistic":18},[],{"title":3025},{"VI":3026},"Department of Physics, Computational Nanophysics Laboratory (CNL), University of Guilan, Rasht, Iran",[],{"title":3029,"gsAuthor":3031},{"VI":3030},"Sahar Izadi Vishkayi",{"VOID":3032},"[\"XTSXq0AAAAAJ\"]",{"id":3034,"sortIndex":97,"researcher":18,"roles":3035,"affiliations":3036,"properties":3043,"displayName":3045,"givenName":18,"familyName":18},"fe1b04dd-c8ba-46a1-a4df-aae2272d1dfc",[133],[3037],{"id":3021,"sortIndex":19,"affiliation":3038,"properties":18},{"id":3021,"createTime":18,"updateTime":18,"relativeEntities":3039,"slug":18,"properties":3040,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":3042,"statistic":18},[],{"title":3041},{"VI":3026},[],{"title":3044,"gsAuthor":3046},{"VI":3045},"Meysam Bagheri 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is an urgent demand for flexible, lightweight, mechanically robust, excellent electromagnetic interference (EMI) shielding materials. Two-dimensional (2D) transition metal carbides\u002Fnitrides (MXenes) have been potential candidates for the construction of excellent EMI shielding materials due to their great electrical electroconductibility, favorable mechanical nature such as flexibility, large aspect ratios, and simple processability in aqueous media. The applicability of MXenes for EMI shielding has been intensively explored; thus, reviewing the relevant research is beneficial for advancing the design of high-performance MXene-based EMI shields. Herein, recent progress in MXene-based macrostructure development is reviewed, including the associated EMI shielding mechanisms. In particular, various structural design strategies for MXene-based EMI shielding materials are highlighted and explored. In the end, the difficulties and views for the future growth of MXene-based EMI shields are proposed. This review aims to drive the growth of high-performance MXene-based EMI shielding macrostructures on basis of rational structural design and the future high-efficiency utilization of MXene.",{"EN":3116},"Diverse Structural Design Strategies of MXene-Based Macrostructure for High-Performance Electromagnetic Interference Shielding",{"VOID":3118},"[\"258879059720173868\"]",{"VOID":3120},"citation_journal_title=ACS Appl. Mater. 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               \n                  \n                \n                \n                  \n                \n                \n                  \n                \n               For decades, chiral nanomaterials have been extensively studied because of their extraordinary properties. Chiral nanostructures have attracted a lot of interest because of their potential applications including biosensing, asymmetric catalysis, optical devices, and negative index materials. Circularly polarized light (CPL) is the most attractive source for chirality owing to its high availability, and now it has been used as a chiral source for the preparation of chiral matter. In this review, the recent progress in the field of CPL-enabled chiral nanomaterials is summarized. Firstly, the recent advancements in the fabrication of chiral materials using circularly polarized light are described, focusing on the unique strategies. Secondly, an overview of the potential applications of chiral nanomaterials driven by CPL is provided, with a particular emphasis on biosensing, catalysis, and phototherapy. Finally, a perspective on the challenges in the field of CPL-enabled chiral nanomaterials is given.\n                \n                  \n                \n              ",{"EN":3317},"Circularly Polarized Light-Enabled Chiral Nanomaterials: From Fabrication to Application",{"VOID":3319},"[\"16601488049436056515\"]",{"VOID":3321},"J.E. Hein, B.H. Cao, C. Viedma, R.M. Kellogg, D.G. Blackmond, Pasteur’s tweezers revisited: on the mechanism of attrition-enhanced deracemization and resolution of chiral conglomerate solids. J. Am. Chem. Soc. 134(30), 12629–12636 (2012). https:\u002F\u002Fdoi.org\u002F10.1021\u002Fja303566g\nW.L. Noorduin, E. Vlieg, R.M. Kellogg, B. Kaptein, From ostwald ripening to single chirality. Angew. Chem. Int. Ed. 48(51), 9600–9606 (2009). https:\u002F\u002Fdoi.org\u002F10.1002\u002Fanie.200905215\nW.J. Zhao, W.X. Zhang, R.Y. Wang, Y.L. Ji, X.C. Wu et al., Photocontrollable chiral switching and selection in self-assembled plasmonic nanostructure. Adv. Funct. 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