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10.1103\u002FPhysRevB.90.035424\nZhu, 2018, Predicting phase behavior of grain boundaries with evolutionary search and machine learning, Nat Commun, 9, 467, 10.1038\u002Fs41467-018-02937-2\nKiyohara, 2016, Prediction of interface structures and energies via virtual screening, Sci Adv, 2, 10.1126\u002Fsciadv.1600746\nWang, 2010, Crystal structure prediction via particle-swarm optimization, Phys Rev B, 82\nWang, 2012, CALYPSO: a method for crystal structure prediction, Comput Phys Commun, 183, 2063, 10.1016\u002Fj.cpc.2012.05.008\nWang, 2014, Perspective: crystal structure prediction at high pressures, J Chem Phys, 140, 040901, 10.1063\u002F1.4861966\nWang, 2015, Materials discovery via CALYPSO methodology, J Phys: Condens Matter, 27, 203203\nWang, 2016, CALYPSO structure prediction method and its wide application, Comp Mater Sci, 112, 406, 10.1016\u002Fj.commatsci.2015.09.037\nWang, 2012, An effective structure prediction method for layered materials based on 2D particle swarm optimization algorithm, J Chem Phys, 137, 224108, 10.1063\u002F1.4769731\nLv, 2018, Direct-gap semiconducting tri-layer silicene with 29% photovoltaic efficiency, Nano Energy, 51, 489, 10.1016\u002Fj.nanoen.2018.06.079\nZhu, 2014, Reactions of xenon with iron and nickel are predicted in the Earth's inner core, Nat Chem, 6, 644, 10.1038\u002Fnchem.1925\nLv, 2012, Particle-swarm structure prediction on clusters, J Chem Phys, 137, 10.1063\u002F1.4746757\nLv, 2014, B38: an all-boron fullerene analogue, Nanoscale, 6, 11692, 10.1039\u002FC4NR01846J\nLu, 2014, Self-assembled ultrathin nanotubes on diamond (100) surface, Nat Commun, 5, 3666, 10.1038\u002Fncomms4666\nGao, 2015, Structure prediction of atoms adsorbed on two-dimensional layer materials: method and applications, J Phys Chem C, 119, 20111, 10.1021\u002Facs.jpcc.5b05035\nLu, 2014, Lattice relaxation at the interface of two-dimensional crystals: graphene and hexagonal boron-nitride, Nano Lett, 14, 5133, 10.1021\u002Fnl501900x\nStradi, 2017, Method for determining optimal supercell representation of interfaces, J Phys: Condens Matter, 29, 185901\nJelver, 2017, Determination of low-strain interfaces via geometric matching, Phys Rev B, 96, 085306, 10.1103\u002FPhysRevB.96.085306\nLazić, 2015, Cell match: combining two unit cells into a common supercell with minimal strain, Comput Phys Commun, 1\nMathew, 2016, MPInterfaces: a materials project based Python tool for high-throughput computational screening of interfacial systems, Comp Mater Sci, 122, 183, 10.1016\u002Fj.commatsci.2016.05.020\nPark, 1968, Annealing changes on the (100) surface of palladium and their effect on CO adsorption, Surf Sci, 11, 188, 10.1016\u002F0039-6028(68)90066-6\nJu, 2014, Origin of high photocatalytic properties in the mixed-phase TiO2: a first-principles theoretical study, ACS Appl Mater Interfaces, 6, 12885, 10.1021\u002Fam502830m\nBrown, 2016\nAradi, 2007, DFTB+, a sparse matrix-based implementation of the DFTB method, J Phys Chem A, 111, 5678, 10.1021\u002Fjp070186p\nKöhler, 2006, Molecular dynamics simulations of CFx (x = 2,3) molecules at Si3N4 and SiO2 surfaces, Surf Sci, 600, 453, 10.1016\u002Fj.susc.2005.10.044\nKresse, 1999, From ultrasoft pseudopotentials to the projector augmented-wave method, Phys Rev B, 59, 1758, 10.1103\u002FPhysRevB.59.1758\nBlöchl, 1994, Projector augmented-wave method, Phys Rev B, 50, 17953, 10.1103\u002FPhysRevB.50.17953\nLuschtinetz, 2009, Adsorption of phosphonic acid at the TiO2 anatase (101) and rutile (110) surfaces, J Phys Chem C, 113, 5730, 10.1021\u002Fjp8110343\nMorgan, 2007, A DFT+U description of oxygen vacancies at the TiO2 rutile (110) surface, Surf Sci, 601, 5034, 10.1016\u002Fj.susc.2007.08.025\nHoward, 1991, Structural and thermal parameters for rutile and anatase, Acta Crystallogr B Struct Sci, 47, 462, 10.1107\u002FS010876819100335X\nLiu, 2010, Cones, pringles, and grain boundary landscapes in graphene topology, Nano Lett, 10, 2178, 10.1021\u002Fnl100988r\nJin, 2006, Improved quantum yield for photocatalytic hydrogen generation under visible light irradiation over eosin sensitized TiO2—investigation of different noble metal loading, J Mol Catal A: Chem, 259, 275, 10.1016\u002Fj.molcata.2006.06.035\nAsahi, 2014, Nitrogen-doped titanium dioxide as visible-light-sensitive photocatalyst: designs, developments, and prospects, Chem Rev, 114, 9824, 10.1021\u002Fcr5000738\nZhou, 2014, Ordered mesoporous black TiO2 as highly efficient hydrogen evolution photocatalyst, J Am Chem Soc, 136, 9280, 10.1021\u002Fja504802q\nXu, 2017, Anatase (101)-like structural model revealed for metastable rutile TiO2 (011) surface, ACS Appl Mater Interfaces, 9, 7891, 10.1021\u002Facsami.6b16449\nZuo, 2010, Self-doped Ti3+ enhanced photocatalyst for hydrogen production under visible light, J Am Chem Soc, 132, 11856, 10.1021\u002Fja103843d\nWan, 2014, The enhanced photocatalytic activity of Ti3+ self-doped TiO2 by a reduction method, Mater Lett, 122, 33, 10.1016\u002Fj.matlet.2014.01.181\nBryan, 2005, Activation of high-Tc ferromagnetism in Co2+:TiO2 and Cr3+:TiO2 nanorods and nanocrystals by grain boundary defects, J Am Chem Soc, 127, 15568, 10.1021\u002Fja0543447\nWei, 2018, Grain boundary facilitates photocatalytic reaction in rutile TiO2 despite fast charge recombination: a time-domain ab initio analysis, J Phys Chem Lett, 9, 5884, 10.1021\u002Facs.jpclett.8b02761\nKörner, 2011, Density functional theory study of dopants in polycrystalline TiO2, Phys Rev B, 83\nSinnott, 2000, Ab initio calculations of rigid-body displacements at the Σ5 (210) tilt grain boundary in TiO2, Phys Rev B, 61, 15645, 10.1103\u002FPhysRevB.61.15645\nDawson, 1996, First-principles study of a tilt grain boundary in rutile, Phys Rev B, 54, 13727, 10.1103\u002FPhysRevB.54.13727\nWallis, 1997, Atomic structure of a 36.8 (210) tilt grain boundary in TiO2, J Am Ceram Soc, 80, 499, 10.1111\u002Fj.1151-2916.1997.tb02857.x\nMorgan, 2010, Intrinsic 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Deep reinforcement learning for quantum gate control. arXiv:190208418, 2019.\nZhang XM, Wei ZZ, Asad R, et al. When reinforcement learning stands out in quantum control? A comparative study on state preparation. arXiv:190202157, 2019.\nBanchi, 2016, Quantum gate learning in qubit networks: toffoli gate without time-dependent control, npj Quantum Inf, 2, 16019, 10.1038\u002Fnpjqi.2016.19\nWu, 2019, Learning robust and high-precision quantum controls, Phys Rev A, 99, 10.1103\u002FPhysRevA.99.042327\nKelly, 2014, Optimal quantum control using randomized benchmarking, Phys Rev Lett, 112, 10.1103\u002FPhysRevLett.112.240504\nEgger, 2014, Adaptive hybrid optimal quantum control for imprecisely characterized systems, Phys Rev Lett, 112, 10.1103\u002FPhysRevLett.112.240503\nShir, 2012, Quantum control experiments as a testbed for evolutionary multi-objective algorithms, Genet Program Evol M, 13, 445, 10.1007\u002Fs10710-012-9164-7\nDong DY, Xing X, Ma HL, et al. Differential evolution for quantum robust control: algorithm, applications and experiments. arXiv:1702.03946, 2017.\nSun, 2015, Ensemble control of open quantum systems using differential evolution, 1\nStorn, 1997, Differential evolution—a simple and efficient heuristic for global optimization over continuous spaces, J Global Optim, 11, 341, 10.1023\u002FA:1008202821328\nDas, 2011, Differential evolution: a survey of the state-of-the-art, IEEE Trans Evol Comput, 15, 4, 10.1109\u002FTEVC.2010.2059031\nDas, 2016, Recent advances in differential evolution-an updated survey, Swarm Evol Comput, 27, 1, 10.1016\u002Fj.swevo.2016.01.004\nAli, 2011, Differential evolution with generalized differentials, J Comput Appl Math, 235, 2205, 10.1016\u002Fj.cam.2010.10.018\nCai, 2013, Differential evolution with neighborhood and direction information for numerical optimization, IEEE T Cybern, 43, 2202, 10.1109\u002FTCYB.2013.2245501\nZhang, 2015, A directional mutation operator for differential evolution algorithms, Appl Soft Comput, 30, 529, 10.1016\u002Fj.asoc.2015.02.005\nKhaneja, 2001, Time optimal control in spin systems, Phys Rev A, 63, 10.1103\u002FPhysRevA.63.032308\nFerrie, 2015, Robust and efficient in situ quantum control, Phys Rev A, 91, 10.1103\u002FPhysRevA.91.052306",{"EN":245},"An improved differential evolution algorithm for learning high-fidelity quantum 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Sci Adv 2020;6:eaba4294.\nZhang, 2019, Ultralong UV\u002Fmechano-excited room temperature phosphorescence from purely organic cluster excitons, Nat Commun, 10, 5161, 10.1038\u002Fs41467-019-13048-x\nBao, 2019, Piezoluminescent devices by designing array structures, Sci Bull, 64, 151, 10.1016\u002Fj.scib.2019.01.001\nPeng, 2021, Mechanoluminescent materials for athletic analytics in sports science, Sci Bull, 66, 206, 10.1016\u002Fj.scib.2020.09.029\nWei, 2016, Dynamic triboelectrification-induced electroluminescence and its use in visualized sensing, Adv Mater, 28, 6656, 10.1002\u002Fadma.201600604\nZuo, 2019, A novel information storage and visual expression device based on mechanoluminescence, J Mater Chem C, 7, 4020, 10.1039\u002FC9TC00641A\nWang, 2015, Dynamic pressure mapping of personalized handwriting by a flexible sensor matrix based on the mechanoluminescence process, Adv Mater, 27, 2324, 10.1002\u002Fadma.201405826\nHu, 2016, Enhanced performances of flexible ZnO\u002Fperovskite solar cells by piezo-phototronic effect, Nano Energy, 23, 27, 10.1016\u002Fj.nanoen.2016.02.057\nLi, 2018, Alkyl chain introduction: in situ solar-renewable colorful organic mechanoluminescence materials, Angew Chem Int Ed, 57, 12727, 10.1002\u002Fanie.201806861\nFontenot, 2011, Triboluminescent materials for smart sensors, Mater Today, 14, 292, 10.1016\u002FS1369-7021(11)70147-X\nİncel, 2017, Integration of triboluminescent EuD4TEA crystals to transparent polymers: impact sensor application, ACS Appl Mater Interfaces, 9, 6488, 10.1021\u002Facsami.6b16330\nZhang, 2021, Discovering and dissecting mechanically excited luminescence of Mn2+ activators via matrix microstructure evolution, Adv Funct Mater, 31\nXu, 1999, Direct view of stress distribution in solid by mechanoluminescence, Appl Phys Lett, 74, 2414, 10.1063\u002F1.123865\nXiong, 2021, Self-recoverable mechanically induced instant luminescence from Cr3+-doped LiGa5O8, Adv Funct Mater, 31, 10.1002\u002Fadfm.202010685\nWang, 2019, Mechanoluminescence enhancement of ZnS:Cu, Mn with piezotronic effect induced trap-depth reduction originated from PVDF ferroelectric film, Nano Energy, 63, 10.1016\u002Fj.nanoen.2019.103861\nChandra, 1998, Mechanoluminescence, 361\nFeng, 2018, A review of mechanoluminescence in inorganic solids: compounds, mechanisms, models and applications, Materials, 11, 484, 10.3390\u002Fma11040484\nFang, 2018, Sr2+ substitution for Ca2+ and Eu2+, Dy3+ co-doping enhance mechanoluminescence of CaAl2Si2O8 phosphors, J Alloy Compd, 763, 267, 10.1016\u002Fj.jallcom.2018.05.294\nPeng, 2015, Recent advances in doped mechanoluminescent phosphors, ChemPlusChem, 80, 1209, 10.1002\u002Fcplu.201500185\nChen, 2020, Creating visible-to-near-infrared mechanoluminescence in mixed-anion compounds SrZn2S2O and SrZnSO, Nano Energy, 68, 10.1016\u002Fj.nanoen.2019.104329\nJeong, 2014, Bright, wind-driven white mechanoluminescence from zinc sulphide microparticles embedded in a polydimethylsiloxane elastomer, Energy Environ Sci, 7, 3338, 10.1039\u002FC4EE01776E\nZhang, 2015, Color manipulation of intense multiluminescence from CaZnOS: Mn2+ by Mn2+ concentration effect, Chem Mater, 27, 7481, 10.1021\u002Facs.chemmater.5b03570\nTerasaki, 2011, Mechanoluminescent light source for a fluorescent probe molecule, Chem Commun, 47, 8034, 10.1039\u002Fc1cc11411e\nTerasaki, 2013, Ultrasonic wave induced mechanoluminescence and its application for photocatalysis as ubiquitous light source, Catal Today, 201, 203, 10.1016\u002Fj.cattod.2012.04.040\nJeong, 2013, Mechanically driven light-generator with high durability, Appl Phys Lett, 102\nJeong, 2013, Color manipulation of mechanoluminescence from stress-activated composite films, Adv Mater, 25, 6194, 10.1002\u002Fadma.201301679\nWu, 2018, Efficient mechanoluminescent elastomers for dual-responsive anticounterfeiting device and stretching\u002Fstrain sensor with multimode sensibility, Adv Funct Mater, 28, 10.1002\u002Fadfm.201803168\nTu, 2014, Intense red emitting mechanoluminescence from CaZnOS:Mn, Li with c-axis preferred orientation, J Adv Diele, 4\nDu, 2018, Mechanically excited multicolor luminescence in lanthanide ions, Adv Mater, 31\nPeng, 2020, A ZnS\u002FCaZnOS heterojunction for efficient mechanical-to-optical energy conversion by conduction band offset, Adv Mater, 32, 10.1002\u002Fadma.201907747\nJha, 2014, Survey of the literature on mechanoluminescence from 1605 to 2013, Luminescence, 29, 977, 10.1002\u002Fbio.2647\nWang, 2005, Electro-mechano-optical conversions in Pr3+-doped BaTiO3-CaTiO3 Ceramics, Adv Mater, 17, 1254, 10.1002\u002Fadma.200401406\nLi, 2016, Long phosphorescent phosphors: from fundamentals to applications, Chem Soc Rev, 45, 2090, 10.1039\u002FC5CS00582E\nXiao, 2021, Room-temperature phosphorescent organic-doped inorganic frameworks showing wide-range and multicolor long persistent luminescence, Research, 2021, 10.34133\u002F2021\u002F9862327\nYang, 2017, Color tunable long-lasting phosphorescence in Mn2+-doped anionic metal-organic framework, J Mater Chem C, 5, 7898, 10.1039\u002FC7TC02493B\nZhou, 2021, Boosting wide-range tunable long-afterglow in 1D metal–organic halide micro\u002Fnanocrystals for space\u002Ftime-resolved information photonics, Adv Mater, 33\nGao, 2021, Recent advances in persistent luminescence based on molecular hybrid materials, Chem Soc Rev, 50, 5564, 10.1039\u002FD0CS01463J\nOu, 2021, High-resolution X-ray luminescence extension imaging, Nature, 590, 410, 10.1038\u002Fs41586-021-03251-6\nWang, 2019, Piezophotonic effect based on mechanoluminescent materials for advanced flexible optoelectronic applications, Nano Energy, 55, 389, 10.1016\u002Fj.nanoen.2018.11.014\nWang, 2020, Mechanoluminescence materials for advanced artificial skin, Sci Bull, 65, 1147, 10.1016\u002Fj.scib.2020.03.034",{"EN":513},"MgF2:Mn2+: novel material with mechanically-induced luminescence",{"VOID":515},"10.1016\u002Fj.scib.2021.12.005","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS209592732100757X",[518,535,547,559,571,588,600],{"id":519,"sortIndex":192,"researcher":18,"roles":520,"affiliations":521,"properties":532},"d21300c0-f5b5-4a09-811f-2277f6a0d12f",[117],[522],{"id":18,"sortIndex":19,"affiliation":523,"properties":18},{"id":524,"createTime":525,"updateTime":526,"relativeEntities":527,"slug":528,"properties":529,"entityType":38,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"877108f4-06b2-43b3-872e-398268eb5a6c","2023-12-20T00:56:11.850+00:00","2024-10-06T22:39:26.787+00:00",[],"Hebei-Key-Laboratory-of-Optic-electronic-Information-and-Materials-College-of-Physics-Science-and-Technology-Hebei-University-Baoding-071002-China",{"title":530},{"VI":531},"Hebei Key Laboratory of Optic-electronic Information and Materials, College of Physics Science and Technology, Hebei University, Baoding 071002, China",{"title":533},{"VI":534},"Yinti Ren",{"id":536,"sortIndex":167,"researcher":18,"roles":537,"affiliations":538,"properties":544},"b1a9574d-731c-4b85-b63e-887369e69858",[117],[539],{"id":18,"sortIndex":19,"affiliation":540,"properties":18},{"id":524,"createTime":525,"updateTime":526,"relativeEntities":541,"slug":528,"properties":542,"entityType":38,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":543},{"VI":531},{"title":545},{"VI":546},"Leipeng Li",{"id":548,"sortIndex":369,"researcher":18,"roles":549,"affiliations":550,"properties":556},"eef4ed31-6706-4347-8fae-7e9b2886085e",[117],[551],{"id":18,"sortIndex":19,"affiliation":552,"properties":18},{"id":524,"createTime":525,"updateTime":526,"relativeEntities":553,"slug":528,"properties":554,"entityType":38,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":555},{"VI":531},{"title":557},{"VI":558},"Yanmin Yang",{"id":560,"sortIndex":19,"researcher":18,"roles":561,"affiliations":562,"properties":568},"35a40074-f180-4ace-b560-3124f7331249",[117],[563],{"id":18,"sortIndex":19,"affiliation":564,"properties":18},{"id":524,"createTime":525,"updateTime":526,"relativeEntities":565,"slug":528,"properties":566,"entityType":38,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":567},{"VI":531},{"title":569},{"VI":570},"Jingjing Ning",{"id":572,"sortIndex":115,"researcher":18,"roles":573,"affiliations":574,"properties":585},"b581aa49-0892-4775-a424-ae0cd6743875",[117],[575],{"id":18,"sortIndex":19,"affiliation":576,"properties":18},{"id":577,"createTime":578,"updateTime":579,"relativeEntities":580,"slug":581,"properties":582,"entityType":38,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"9a2149ec-656f-4491-8259-68990d13a0df","2024-01-14T06:36:36.634+00:00","2024-11-26T15:38:22.697+00:00",[],"College-of-Physics-and-Optoelectronic-Engineering-Shenzhen-University-Shenzhen-518060-China",{"title":583},{"VI":584},"College of Physics and Optoelectronic Engineering, Shenzhen University, Shenzhen 518060, China",{"title":586},{"VI":587},"Dengfeng Peng",{"id":589,"sortIndex":142,"researcher":18,"roles":590,"affiliations":591,"properties":597},"9d693f9f-47e9-4508-b1be-e0634f200c1e",[117],[592],{"id":18,"sortIndex":19,"affiliation":593,"properties":18},{"id":524,"createTime":525,"updateTime":526,"relativeEntities":594,"slug":528,"properties":595,"entityType":38,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":596},{"VI":531},{"title":598},{"VI":599},"Xingqiang Shi",{"id":601,"sortIndex":110,"researcher":18,"roles":602,"affiliations":603,"properties":609},"061672aa-ab26-4efc-855a-3c90fb56776e",[117],[604],{"id":18,"sortIndex":19,"affiliation":605,"properties":18},{"id":577,"createTime":578,"updateTime":579,"relativeEntities":606,"slug":581,"properties":607,"entityType":38,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":608},{"VI":584},{"title":610},{"VI":611},"Yuantian Zheng",{"url":516,"publisher":613,"properties":635},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":614,"slug":10,"properties":615,"entityType":16,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19,"subjectFields":618,"manageAffiliations":619,"indexDatabases":620,"url":18,"thumbnailPath":18,"statistic":18,"gsStatistic":18,"type":18,"analyzePriority":18},[],{"issn":616,"title":617},{"VOID":13},{"EN":15},[],[],[621,628],{"id":53,"indexDatabase":622,"url":68,"indexYears":18,"academicFieldIds":627,"indexDatabaseRanking":18},{"id":55,"createTime":56,"updateTime":57,"relativeEntities":623,"label":624,"description":625,"key":64,"publicationTags":626,"standard":18},[],{"EN":60,"VI":60},{"VI":62,"EN":63},[66,67],[70],{"id":72,"indexDatabase":629,"url":85,"indexYears":86,"academicFieldIds":634,"indexDatabaseRanking":89},{"id":74,"createTime":75,"updateTime":76,"relativeEntities":630,"label":631,"description":632,"key":82,"publicationTags":633,"standard":18},[],{"EN":79,"VI":79},{"EN":79,"VI":81},[84],[88],{"volume":636,"pages":638},{"VOID":637},"67",{"VOID":639},"707-715","2022-04-01",2022,{"id":643,"createTime":644,"updateTime":645,"relativeEntities":646,"slug":647,"properties":648,"entityType":107,"verifyStatus":108,"verifyTime":645,"verifyNote":109,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":110,"primaryUrl":655,"fullTextUrl":18,"authors":656,"publicationType":203,"publisherRelationship":684,"citationCount":18,"citationInfo":18,"publishDate":712,"publishYear":713,"citationAnalyzeStatus":17,"lastCitationAnalyze":18,"indexDatabases":18,"openAccess":18,"references":18,"isForceReanalyzing":234},"512ccea0-5363-4c26-a21e-b85205d5e8bd","2024-01-17T08:01:57.168+00:00","2025-01-25T23:54:08.830+00:00",[],"Development-of-a-RNAi-based-release-of-insects-carrying-a-dominant-lethal-RIDL-system-in-Drosophila-melanogaster",{"references":649,"title":651,"doi":653},{"VOID":650},"Horn, 2003, A transgene-based, embryo-specific lethality system for insect pest management, Nat Biotechnol, 21, 64, 10.1038\u002Fnbt769\nThomas, 2000, Insect population control using a dominant, repressible, lethal genetic system, Science, 287, 2474, 10.1126\u002Fscience.287.5462.2474\nAlphey, 2008, Insect population suppression using engineered insects, Adv Exp Med Biol, 627, 93, 10.1007\u002F978-0-387-78225-6_8\nAlphey, 2007, Managing insecticide resistance by mass release of engineered insects, J Econ Entomol, 100, 1642, 10.1093\u002Fjee\u002F100.5.1642\nAlphe, 2009, Combining pest control and resistance management: synergy of engineered insects with Bt crops, J Econ Entomol, 102, 717, 10.1603\u002F029.102.0233\nGong, 2005, A dominant lethal genetic system for autocidal control of the Mediterranean fruitfly, Nat Biotechnol, 23, 453, 10.1038\u002Fnbt1071\nBargielowski, 2011, Cost of mating and insemination capacity of a genetically modified mosquito aedes aegypti OX513A compared to its wild type counterpart, PLoS One, 6\nTabashnik, 2010, Suppressing resistance to Bt cotton with sterile insect releases, Nat Biotechnol, 28, 1304, 10.1038\u002Fnbt.1704\nPhuc, 2007, Late-acting dominant lethal genetic systems and mosquito control, BMC Biol, 5, 11, 10.1186\u002F1741-7007-5-11\nFu, 2007, Female-specific insect lethality engineered using alternative splicing, Nat Biotechnol, 25, 353, 10.1038\u002Fnbt1283\nFu, 2010, Female-specific flightless phenotype for mosquito control, Proc Natl Acad Sci USA, 107, 4550, 10.1073\u002Fpnas.1000251107\nLycett, 2004, Conditional expression in the malaria mosquito Anopheles stephensi with Tet-On and Tet-Off systems, Genetics, 167, 1781, 10.1534\u002Fgenetics.104.028175\nKennerdell, 2000, Heritable gene silencing in Drosophila using double-stranded RNA, Nat Biotechnol, 18, 896, 10.1038\u002F78531\nThompson, 2002, A new nuclear component of the Wnt signalling pathway, Nat Cell Biol, 4, 367, 10.1038\u002Fncb786\nParker, 2002, Pygopus, a nuclear PHD-finger protein required for Wingless signaling in Drosophila, Development, 129, 2565, 10.1242\u002Fdev.129.11.2565\nBelenkaya, 2002, Pygopus Encodes a nuclear protein essential for wingless\u002FWnt signaling, Development, 129, 4089, 10.1242\u002Fdev.129.17.4089\nKramps, 2002, Wnt\u002Fwingless signaling requires BCL9\u002Flegless-mediated recruitment of pygopus to the nuclear beta-catenin-TCF complex, Cell, 109, 47, 10.1016\u002FS0092-8674(02)00679-7\nHeinrich, 2000, A repressible female-specific lethal genetic system for making transgenic insect strains suitable for a sterile-release program, Proc Natl Acad Sci USA, 97, 8229, 10.1073\u002Fpnas.140142697\nDietzl, 2007, A genome-wide transgenic RNAi library for conditional gene inactivation in Drosophila, Nature, 448, 151, 10.1038\u002Fnature05954\nShelly, 2007, Sterile insect technique and Mediterranean fruit fly (Diptera: Tephritidae): assessing the utility of aromatherapy in a Hawaiian coffee field, J Econ Entomol, 100, 273, 10.1093\u002Fjee\u002F100.2.273\nGarabedian, 1986, A tissue-specific transcription enhancer from the Drosophila yolk protein 1 gene, Cell, 45, 859, 10.1016\u002F0092-8674(86)90560-X\nPremsrirut, 2011, A rapid and scalable system for studying gene function in mice using conditional RNA interference, Cell, 145, 145, 10.1016\u002Fj.cell.2011.03.012\nJessen, 2008, Pygopus and the Wnt signaling pathway: a diverse set of connections, Bioessays, 30, 448, 10.1002\u002Fbies.20757\nBiteau, 2010, Lifespan extension by preserving proliferative homeostasis in Drosophila, PLoS Genet, 6, 10.1371\u002Fjournal.pgen.1001159\nYe, 2007, Downregulation of Wnt signaling is a trigger for formation of facultative heterochromatin and onset of cell senescence in primary human cells, Mol Cell, 27, 183, 10.1016\u002Fj.molcel.2007.05.034\nFranz, 2009, Stability and loss of a virus resistance phenotype over time in transgenic mosquitoes harbouring an antiviral effector gene, Insect Mol Biol, 18, 661, 10.1111\u002Fj.1365-2583.2009.00908.x",{"EN":652},"Development of a RNAi-based release of insects carrying a dominant lethal (RIDL) system in Drosophila melanogaster",{"VOID":654},"10.1007\u002Fs11434-014-0667-x","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS209592731630500X",[657,672],{"id":658,"sortIndex":110,"researcher":18,"roles":659,"affiliations":660,"properties":669},"4f986fe8-a859-4ffd-aec7-af3fbcfa0e2c",[117],[661],{"id":18,"sortIndex":19,"affiliation":662,"properties":18},{"id":663,"createTime":664,"updateTime":664,"relativeEntities":665,"slug":18,"properties":666,"entityType":38,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"a498d534-3114-44fa-8087-da816cea90e2","2024-01-14T07:40:55.551+00:00",[],{"title":667},{"VI":668},"College of Life Sciences, China Jiliang University, Hangzhou 310018, China",{"title":670},{"VI":671},"Guanlin Wang",{"id":673,"sortIndex":19,"researcher":18,"roles":674,"affiliations":675,"properties":681},"a4b28f68-61a8-45d1-afe5-5817c9c7ba26",[117],[676],{"id":18,"sortIndex":19,"affiliation":677,"properties":18},{"id":663,"createTime":664,"updateTime":664,"relativeEntities":678,"slug":18,"properties":679,"entityType":38,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":680},{"VI":668},{"title":682},{"VI":683},"Xinda Lin",{"url":655,"publisher":685,"properties":707},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":686,"slug":10,"properties":687,"entityType":16,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19,"subjectFields":690,"manageAffiliations":691,"indexDatabases":692,"url":18,"thumbnailPath":18,"statistic":18,"gsStatistic":18,"type":18,"analyzePriority":18},[],{"issn":688,"title":689},{"VOID":13},{"EN":15},[],[],[693,700],{"id":53,"indexDatabase":694,"url":68,"indexYears":18,"academicFieldIds":699,"indexDatabaseRanking":18},{"id":55,"createTime":56,"updateTime":57,"relativeEntities":695,"label":696,"description":697,"key":64,"publicationTags":698,"standard":18},[],{"EN":60,"VI":60},{"VI":62,"EN":63},[66,67],[70],{"id":72,"indexDatabase":701,"url":85,"indexYears":86,"academicFieldIds":706,"indexDatabaseRanking":89},{"id":74,"createTime":75,"updateTime":76,"relativeEntities":702,"label":703,"description":704,"key":82,"publicationTags":705,"standard":18},[],{"EN":79,"VI":79},{"EN":79,"VI":81},[84],[88],{"volume":708,"pages":710},{"VOID":709},"60",{"VOID":711},"356-362","2015-02-01",2015,{"id":715,"createTime":716,"updateTime":717,"relativeEntities":718,"slug":719,"properties":720,"entityType":107,"verifyStatus":108,"verifyTime":717,"verifyNote":109,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":110,"primaryUrl":729,"fullTextUrl":18,"authors":730,"publicationType":203,"publisherRelationship":765,"citationCount":18,"citationInfo":18,"publishDate":792,"publishYear":713,"citationAnalyzeStatus":17,"lastCitationAnalyze":18,"indexDatabases":18,"openAccess":18,"references":18,"isForceReanalyzing":234},"4989d633-af74-475a-ab13-5b0899250ff4","2024-01-03T16:18:25.419+00:00","2025-02-09T23:52:46.087+00:00",[],"Modulation-of-the-urban-heat-island-by-the-tourism-during-the-Chinese-New-Year-holiday-a-case-study-in-Sanya-City-Hainan-Province-of-China",{"references":721,"abstract":723,"title":725,"doi":727},{"VOID":722},"Grimm NB, Faeth SH, Golubiewski NE et al (2008) Science 319:756–760\nHoward L (1818) The climate of London, deduced from meteorological observations, made at different places in the neighbourhood of the metropolis, vol 1. Harvey and Darton, London\nUn DESA Population Division (2014) World urbanization prospects: the 2014 revision. United Nations Department of Economic and Social Affairs (UN DESA) Population Division, New York\nBonan GB (2008) Ecological climatology, 2nd edn. Cambridge University Press, Cambridge\nMyhre GD, Shindell D, Bréon FM et al (2013) Anthropogenic and natural radiative forcing. Cambridge University Press, Cambridge, pp 659–740\nZhang JY, Wu LY, Yuan F et al (2015) Sci Bull 60:1038–1041\nWu LY, Zhang JY, Shi CX (2015) Atmos Oceanic Sci Lett 2:63–66\nWorld Tourism Organization (2013) UNWTO annual report 2013. UNWTO, Madrid\nHainan Meteorological Bureau (2012) Brief history of Beijing basic meteorological station. China Meteorological Press, Beijing (in Chinese)\nIPCC (2014) Key economic sectors and services. Cambridge University Press, Cambridge, pp 659–708",{"EN":724},"The urban heat island (UHI) represents one of the most significant human impacts on the earth system. In recent decades, the number of the tourists has a remarkable increase in China and also other regions of the globe. However, it is still unclear whether or to what extent the tourism can affect the UHI. Here, we investigate the role of the tourism for the UHI during the Chinese New Year (CNY) holiday based on a case study in tropical Sanya City, which attracts many tourists for celebrating the CNY and enjoying the warm climate during the holiday. We find that the UHI effects expressed as daily mean (ΔT\n                        mean), maximum (ΔT\n                        max), and minimum (ΔT\n                        min) surface air temperature differences between urban and nearby non-urban stations averaged over the period of 1995–2004 during the CNY week were 0.48 °C (39 %), 0.66 °C (61 %), and 0.42 °C (26 %) higher than those averaged over the background period (8 weeks including 4 weeks before and 4 weeks after the CNY week), respectively. These changes are all significant at the 99 % confidence level. Our findings highlight previously unidentified impact of the tourism on the UHI based on a case study in Sanya City, Hainan Province of China.",{"EN":726},"Modulation of the urban heat island by the tourism during the Chinese New Year holiday: a case study in Sanya City, Hainan Province of 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2012, Recent advances in transition-metal catalyzed reactions using molecular oxygen as the oxidant, Chem Soc Rev, 41, 3381, 10.1039\u002Fc2cs15224j\nCampbell, 2012, Overcoming the “oxidant oroblem”: strategies to use O2 as the oxidant in organometallic C-H oxidation reactions catalyzed by Pd (and Cu), Acc Chem Res, 45, 851, 10.1021\u002Far2002045\nStahl, 2004, Palladium oxidase catalysis: selective oxidation of organic chemicals by direct dioxygen-coupled turnover, Angew Chem Int Ed, 43, 3400, 10.1002\u002Fanie.200300630\nWang, 2017, In situ carbon homogeneous doping on ultrathin bismuth molybdate: a dual-purpose strategy for efficient molecular oxygen activation, Adv Funct Mater, 27, 1703923, 10.1002\u002Fadfm.201703923\nHuang, 2020, Ultrafast O2 activation by copper oxide for 2,4-dichlorophenol degradation: The size-dependent surface reactivity, Chin Chem Lett, 31, 2769, 10.1016\u002Fj.cclet.2020.06.040\nLang, 2014, Selective aerobic oxidation mediated by TiO2 photocatalysis, Acc Chem Res, 47, 355, 10.1021\u002Far4001108\nDeng, 2019, Organotellurium catalysis-enabled utilization of molecular oxygen as oxidant for oxidative deoximation reactions under solvent-free conditions, Sci Bull, 64, 1280, 10.1016\u002Fj.scib.2019.07.007\nCao, 2020, InP quantum dots on g-C3N4 nanosheets to promote molecular oxygen activation under visible light, Chin Chem Lett, 31, 2689, 10.1016\u002Fj.cclet.2020.07.032\nWang, 2020, Ketones as molecular co-catalysts for boosting exciton-based photocatalytic molecular oxygen activation, Angew Chem Int Ed, 59, 11093, 10.1002\u002Fanie.202003042\nLong, 2013, Surface facet of palladium nanocrystals: a key parameter to the activation of molecular oxygen for organic catalysis and cancer treatment, J Am Chem Soc, 135, 3200, 10.1021\u002Fja311739v\nChen, 2019, Designed synthesis of a 2D porphyrin-based sp2 carbon-conjugated covalent organic framework for heterogeneous photocatalysis, Angew Chem Int Ed, 58, 6430, 10.1002\u002Fanie.201902543\nShi, 2020, 2D sp2 carbon-conjugated porphyrin covalent organic framework for cooperative photocatalysis with TEMPO, Angew Chem Int Ed, 59, 9088, 10.1002\u002Fanie.202000723\nLuo, 2015, Carbazolic porous organic framework as an efficient, metal-free visible-light photocatalyst for organic synthesis, ACS Catal, 5, 2250, 10.1021\u002Facscatal.5b00025\nHuang, 2021, Enhanced photoelectrocatalytic activities for CH3OH to HCHO conversion on Fe2O3\u002FMoO3: Fe-O-Mo covalency dominates the intrinsic activity, Angew Chem Int Ed, 60, 9546, 10.1002\u002Fanie.202101058\nOu, 2019, Photocatalytic cascade radical cyclization approach to bioactive indoline-alkaloids over donor-acceptor type conjugated microporous polymer, ACS Catal, 9, 5178, 10.1021\u002Facscatal.9b00693\nLi, 2020, Surface hydrogen bond network spatially confined BiOCl oxygen vacancy for photocatalysis, Sci Bull, 65, 1916, 10.1016\u002Fj.scib.2020.06.013\nTang, 2020, Oxidation of aromatic sulfides with molecular oxygen: controllable synthesis of sulfoxides or sulfones, Chin Chem Lett, 31, 2991, 10.1016\u002Fj.cclet.2020.03.030\nMeng, 2020, 2D and 3D porphyrinic covalent organic frameworks: the influence of dimensionality on functionality, Angew Chem Int Ed, 59, 3624, 10.1002\u002Fanie.201913091\nZheng, 2018, Black phosphorus and polymeric carbon nitride heterostructure for photoinduced molecular oxygen activation, Adv Funct Mater, 28, 1705407, 10.1002\u002Fadfm.201705407\nLang, 2015, Synergistic photocatalytic aerobic oxidation of sulfides and amines on TiO2 under visible-light irradiation, Chem Sci, 6, 1075, 10.1039\u002FC4SC02891K\nLei, 2020, Synergistic effects of crystal structure and oxygen vacancy on Bi2O3 polymorphs: intermediates activation, photocatalytic reaction efficiency, and conversion pathway, Sci Bull, 65, 467, 10.1016\u002Fj.scib.2020.01.007\nXu, 2017, Selective oxidation of 5-hydroxymethylfurfural to 2,5-furandicarboxylic acid using O2 and a photocatalyst of Co-thioporphyrazine bonded to g-C3N4, 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Mater, 31, 1903545, 10.1002\u002Fadma.201903545\nGuo, 2020, Steering exciton dissociation and charge migration in green synthetic oxygen-substituted ultrathin porous graphitic carbon nitride for boosted photocatalytic reactive oxygen species generation, Chem Eng J, 385, 10.1016\u002Fj.cej.2019.123919\nWang, 2020, An excitonic perspective on low-dimensional semiconductors for photocatalysis, J Am Chem Soc, 142, 14007, 10.1021\u002Fjacs.0c06966\nQian, 2020, Photocatalytic molecular oxygen activation by regulating excitonic effects in covalent organic frameworks, J Am Chem Soc, 142, 20763, 10.1021\u002Fjacs.0c09727\nWang, 2016, Enhanced singlet oxygen generation in oxidized graphitic carbon nitride for organic synthesis, Adv Mater, 28, 6940, 10.1002\u002Fadma.201601413\nWang, 2017, Boosting hot-electron generation: exciton dissociation at the order–disorder interfaces in polymeric photocatalysts, J Am Chem Soc, 139, 2468, 10.1021\u002Fjacs.6b12878\nWang, 2017, Rational design of 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Conjugated microporous polymer nanosheets for overall water splitting using visible light, Adv Mater, 29, 1702428, 10.1002\u002Fadma.201702428\nZhang, 2020, Trimethyltriazine-derived olefin-linked covalent organic framework with ultralong nanofibers, Sci Bull, 65, 1659, 10.1016\u002Fj.scib.2020.05.033\nChen, 2020, Acetylene and diacetylene functionalized covalent triazine frameworks as metal-free photocatalysts for hydrogen peroxide production: a new two-electron water oxidation pathway, Adv Mater, 32, 1904433, 10.1002\u002Fadma.201904433\nNosaka, 2017, Generation and detection of reactive oxygen species in photocatalysis, Chem Rev, 117, 11302, 10.1021\u002Facs.chemrev.7b00161\nZhang, 2020, A highly crystalline perylene imide polymer with the robust built-in electric field for efficient photocatalytic water oxidation, Adv Mater, 32, 1907746, 10.1002\u002Fadma.201907746\nBi, 2018, Enhanced photocatalytic hydrogen evolution of NiCoP\u002Fg-C3N4 with improved separation efficiency and 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blocking layer to enhance photomultiplication in organic shortwave infrared photodetectors, J Mater Chem C, 8, 15142, 10.1039\u002FD0TC03013A\nWu, 2019, A highly responsive organic image sensor based on a two-terminal organic photodetector with photomultiplication, Adv Mater, 31, 10.1002\u002Fadma.201903687\nKim, 2021, Interfacial electrostatic-interaction-enhanced photomultiplication for ultrahigh external quantum efficiency of organic hotodiodes, Adv Mater, 33, 10.1002\u002Fadma.202104689\nWang, 2017, High sensitivity, fast response and low operating voltage organic photodetectors by incorporating a water\u002Falcohol soluble conjugated polymer anode buffer layer, RSC Adv, 7, 1743, 10.1039\u002FC6RA26750E\nWang, 2017, High sensitivity and fast response solution processed polymer photodetectors with polyethylenimine ethoxylated (PEIE) modified ITO electrode, Opt Express, 25, 7719, 10.1364\u002FOE.25.007719\nMiao, 2016, Highly sensitive organic photodetectors with tunable spectral response under bi-directional bias, Adv Opt Mater, 4, 1711, 10.1002\u002Fadom.201600387\nKhan, 2018, A flexible organic reflectance oximeter array, Proc Natl Acad Sci USA, 115, E11015, 10.1073\u002Fpnas.1813053115\nAkkerman, 2018, Printed organic photodetector arrays and their use in palmprint scanners, SID Symposium Digest Technical Papers, 49, 494, 10.1002\u002Fsdtp.12609\nYokota, 2016, Ultraflexible organic photonic skin, Sci Adv, 2, 10.1126\u002Fsciadv.1501856\nYuan, 2019, Significantly enhanced detectivity of CIGS broadband high-speed photodetectors by grain size control and ALD-Al2O3 interfacial-layer modification, ACS Appl Mater Interfaces, 11, 20157, 10.1021\u002Facsami.9b04248\nWang, 2018, Nanoengineering of the Cu2ZnSnS4-TiO2 interface via atomic layer deposition of Al2O3 for high sensitivity photodetectors and solid state solar cells, J Mater Chem A, 6, 11507, 10.1039\u002FC8TA02966K\nKim, 2021, Highly responsive near-infrared photodetector with low dark current using 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Graphene coated textile based highly flexible and washable sports bra for human health monitoring, Mater Design, 193\nJönsson, 2003, X-ray photoelectron spectroscopy study of the metal\u002Fpolymer contacts involving aluminum and poly(3,4-ethylenedioxythiophene)-poly(styrenesulfonic acid) derivatives, J Mater Res, 18, 1219, 10.1557\u002FJMR.2003.0167\nAmanchukwu, 2016, Evaluation and stability of PEDOT polymer electrodes for Li-O2 batteries, J Phys Chem Lett, 7, 3770, 10.1021\u002Facs.jpclett.6b01986\nRam, 2019, Development of WO3-PEDOT:PSS hybrid nanocomposites based devices for liquefied petroleum gas (LPG) sensor, J Mater Sci Mater Electron, 30, 13593, 10.1007\u002Fs10854-019-01728-9\nSusanti, 2018, Effect of localized surface plasmon resonance from incorporated gold nanoparticles in PEDOT:PSS hole transport layer for hybrid solar cell applications, J Phys Conf Series, 1080, 10.1088\u002F1742-6596\u002F1080\u002F1\u002F012010\nHassan, 2019, Highly sensitive and full range detectable humidity sensor using PEDOT:PSS, methyl red and graphene oxide materials, Sci Rep, 9, 15227, 10.1038\u002Fs41598-019-51712-w\nJackson, 2015, Tuning acid-base properties using Mg-Al oxide atomic layer deposition, ACS Appl Mater Interfaces, 7, 16573, 10.1021\u002Facsami.5b04107\nWang, 2020, Efficient and stable operation of nonfullerene organic solar cells: Retaining a high built-in potential, J Mater Chem A, 8, 21255, 10.1039\u002FD0TA08018G\nZhu, 2021, Spatiotemporal sectioning of two-photon fluorescence ellipsoid with a CsPbBr3 nanosheet, Nano Res, 14, 4288, 10.1007\u002Fs12274-021-3689-0\nZhu, 2022, Active manipulation of luminescent dynamics via Au NPs-CsPbBr3 interfacial engineering, Laser Photonics Rev, 17\nYang, 2018, Surface polarization and recombination in organic-inorganic hybrid perovskite solar cells based on photo- and electrically induced negative capacitance studies, Org Electron, 62, 203, 10.1016\u002Fj.orgel.2018.08.015\nJi, 2022, Highly sensitive self-powered 2D 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