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To fulfil the demand of energy, it has now become necessary to increase the production of hydrocarbons from producing reservoirs using new enhanced oil recovery technology. Nanoparticles (NPs) having dimensions of 1–100 nm has shown the capability to solve the problem of oil recovery. The capability of nanoparticles to change certain factors inside the reservoir can significantly help in enhancing the oil recoveries from the producing reservoir. This review study aims to facilitate and encourage the researchers who are interested in enhancing oil recovery using nanoparticles. This paper presents the oil displacement mechanisms and the potential of 4 different types of nanoparticles (SiO2, Al2O3, Fe2O3, TiO2) in enhancing the oil recovery. Results of laboratory experiments have been presented in this paper. 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The phytochemicals present in the fruit extract act as an effective reducing and capping agent to synthesize AuNPs. The synthesized AuNPs were characterized by spectrophotometry, transmission electron microscopy (TEM), x-ray diffraction (XRD), and Fourier transform infrared (FTIR) spectroscopy. TEM studies revealed the particles of various sizes and mainly spherical in shape. Selected-area electron diffraction (SAED) patterns and high-resolution transmission electron microscopy (HRTEM) images confirmed the crystallinity of the particles. The XRD patterns showed peaks at (111), (200), (220) which exhibited preferential orientation of the AuNPs as face-centered cubic crystal. FTIR measurements confirmed the coating of phenolic compounds on the AuNPs indicating a possible role of biomolecules for the capping and efficient stabilization of the AuNPs. The synthesized AuNPs did not show any form of cytotoxicity in the normal fibroblast cell line L929\r\n\r\n\r\n",{"VI":369},"Green synthesis of gold nanoparticles using aqueous extract of Dillenia indica",{"VOID":371},"11618796371373944940",{"EN":142},"https:\u002F\u002Fwww.ans.ac.vn\u002Findex.php\u002Foms\u002Farticle\u002Fview\u002F488",[],{"url":373,"publisher":376,"properties":422},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":377,"slug":10,"properties":378,"entityType":19,"verifyStatus":20,"verifyTime":21,"verifyNote":21,"languages":21,"translateLanguages":21,"viewCount":22,"subjectFields":383,"manageAffiliations":396,"indexDatabases":402,"url":89,"thumbnailPath":21,"statistic":417,"gsStatistic":21,"type":21,"analyzePriority":21},[],{"country":379,"eissn":380,"issn":381,"title":382},{"VOID":13},{"VOID":15},{"VOID":15},{"EN":18},[384,388,392],{"id":25,"createTime":21,"updateTime":21,"relativeEntities":385,"label":386,"description":387,"parentId":21,"standard":21,"scholarHubFieldId":21},[],{"EN":28},{},{"id":31,"createTime":21,"updateTime":21,"relativeEntities":389,"label":390,"description":391,"parentId":21,"standard":21,"scholarHubFieldId":21},[],{"EN":34},{},{"id":37,"createTime":21,"updateTime":21,"relativeEntities":393,"label":394,"description":395,"parentId":21,"standard":21,"scholarHubFieldId":21},[],{"EN":40},{},[397],{"id":44,"createTime":21,"updateTime":21,"relativeEntities":398,"slug":21,"properties":399,"entityType":21,"verifyStatus":21,"verifyTime":21,"verifyNote":21,"languages":21,"translateLanguages":21,"viewCount":21,"url":21,"parentIds":401,"statistic":21},[],{"title":400},{"EN":48},[],[403,410],{"id":52,"indexDatabase":404,"url":65,"indexYears":21,"academicFieldIds":409,"indexDatabaseRanking":21},{"id":54,"createTime":21,"updateTime":21,"relativeEntities":405,"label":406,"description":407,"key":61,"publicationTags":408,"standard":21},[],{"EN":57,"VI":57},{"EN":59,"VI":60},[63,64],[67,68,69],{"id":71,"indexDatabase":411,"url":82,"indexYears":83,"academicFieldIds":416,"indexDatabaseRanking":88},{"id":73,"createTime":21,"updateTime":21,"relativeEntities":412,"label":413,"description":414,"key":79,"publicationTags":415,"standard":21},[],{"EN":76,"VI":76},{"EN":76,"VI":78},[81],[85,86,87],{"impactFactor":91,"impactFactorByYear":418,"i10Index":100,"i10IndexLast5Year":101,"totalPublication":102,"totalPublicationByYear":419,"totalCitation":109,"totalCitationByYear":420,"totalCitationPerPublication":116,"totalCitationPerPublicationByYear":421,"hindexLast5Year":123,"hindex":123},{"2011":93,"2012":94,"2013":95,"2020":96,"2021":97,"2022":98,"2023":99},{"2010":104,"2011":105,"2019":106,"2020":107,"2021":108},{"2010":111,"2011":112,"2019":113,"2020":114,"2021":115},{"2010":118,"2011":119,"2019":120,"2020":121,"2021":122},{"title":423},{"EN":198,"VI":199},{"total":91,"publishYear":202,"statisticByYear":425},{},"2019-03-09","2026-08-24T21:08:24.193+00:00",[88,63],{"id":430,"createTime":431,"updateTime":432,"relativeEntities":433,"slug":434,"properties":435,"entityType":143,"verifyStatus":20,"verifyTime":443,"verifyNote":145,"languages":21,"translateLanguages":21,"viewCount":91,"primaryUrl":444,"fullTextUrl":21,"authors":445,"publicationType":148,"publisherRelationship":446,"citationCount":91,"citationInfo":495,"publishDate":497,"publishYear":202,"citationAnalyzeStatus":210,"lastCitationAnalyze":498,"indexDatabases":499,"openAccess":21,"references":21,"isForceReanalyzing":213},"61dc6ecd-b58e-4a15-a3ea-d6f1a9fe5d87","2023-06-13T22:57:57.717+00:00","2026-08-24T20:06:28.475+00:00",[],"Porous-scaffolds-based-on-biogenic-poly-%CE%B5-caprolactone-hydroxyapatite-composites-in-vivo-study",{"abstract":436,"title":438,"gsPaper":440,"keywords":442},{"EN":437},"\r\n\r\n\r\nEach year million tons of fish bones and shellfish are caught, which were causing a serious environmental problem. Although these wastes contain valuable minerals, their use is not widespread. The main objective of the present study is the evaluation of the&nbsp;in vitro&nbsp;and&nbsp;in vivo&nbsp;behaviour of the extracted poly (ε-caprolactone)\u002Fnano-hydroxyapatite composites porous scaffolds. PCL\u002FHA composites were prepared by an impregnation method, and the optimized composites were implanted in adult male albino (Sprague-Dawley strain) rats. The studied composites were evaluated as bone substitutes or fillers, and their degradation products were studied via biological and surgical examination.&nbsp;In vivo&nbsp;tests and biochemical studies were conducted to observe the changes found in blood. Biological studies showed that the decay of the PCL\u002FHA scaffolds had no effect on the liver and kidney functions. They did not lead to carcinogenic or, oxidative effects and there was no oxygen radical's liberation that could damage the tissues. It also showed no inflammatory effect\r\n\r\n\r\n",{"VI":439},"Porous scaffolds based on biogenic poly (ε-caprolactone)\u002Fhydroxyapatite composites: in vivo study",{"VOID":441},"12473610419446121027",{"EN":142},"2023-06-13T22:57:57.716+00:00","https:\u002F\u002Fwww.ans.ac.vn\u002Findex.php\u002Foms\u002Farticle\u002Fview\u002F686",[],{"url":444,"publisher":447,"properties":493},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":448,"slug":10,"properties":449,"entityType":19,"verifyStatus":20,"verifyTime":21,"verifyNote":21,"languages":21,"translateLanguages":21,"viewCount":22,"subjectFields":454,"manageAffiliations":467,"indexDatabases":473,"url":89,"thumbnailPath":21,"statistic":488,"gsStatistic":21,"type":21,"analyzePriority":21},[],{"country":450,"eissn":451,"issn":452,"title":453},{"VOID":13},{"VOID":15},{"VOID":15},{"EN":18},[455,459,463],{"id":25,"createTime":21,"updateTime":21,"relativeEntities":456,"label":457,"description":458,"parentId":21,"standard":21,"scholarHubFieldId":21},[],{"EN":28},{},{"id":31,"createTime":21,"updateTime":21,"relativeEntities":460,"label":461,"description":462,"parentId":21,"standard":21,"scholarHubFieldId":21},[],{"EN":34},{},{"id":37,"createTime":21,"updateTime":21,"relativeEntities":464,"label":465,"description":466,"parentId":21,"standard":21,"scholarHubFieldId":21},[],{"EN":40},{},[468],{"id":44,"createTime":21,"updateTime":21,"relativeEntities":469,"slug":21,"properties":470,"entityType":21,"verifyStatus":21,"verifyTime":21,"verifyNote":21,"languages":21,"translateLanguages":21,"viewCount":21,"url":21,"parentIds":472,"statistic":21},[],{"title":471},{"EN":48},[],[474,481],{"id":52,"indexDatabase":475,"url":65,"indexYears":21,"academicFieldIds":480,"indexDatabaseRanking":21},{"id":54,"createTime":21,"updateTime":21,"relativeEntities":476,"label":477,"description":478,"key":61,"publicationTags":479,"standard":21},[],{"EN":57,"VI":57},{"EN":59,"VI":60},[63,64],[67,68,69],{"id":71,"indexDatabase":482,"url":82,"indexYears":83,"academicFieldIds":487,"indexDatabaseRanking":88},{"id":73,"createTime":21,"updateTime":21,"relativeEntities":483,"label":484,"description":485,"key":79,"publicationTags":486,"standard":21},[],{"EN":76,"VI":76},{"EN":76,"VI":78},[81],[85,86,87],{"impactFactor":91,"impactFactorByYear":489,"i10Index":100,"i10IndexLast5Year":101,"totalPublication":102,"totalPublicationByYear":490,"totalCitation":109,"totalCitationByYear":491,"totalCitationPerPublication":116,"totalCitationPerPublicationByYear":492,"hindexLast5Year":123,"hindex":123},{"2011":93,"2012":94,"2013":95,"2020":96,"2021":97,"2022":98,"2023":99},{"2010":104,"2011":105,"2019":106,"2020":107,"2021":108},{"2010":111,"2011":112,"2019":113,"2020":114,"2021":115},{"2010":118,"2011":119,"2019":120,"2020":121,"2021":122},{"title":494},{"EN":198,"VI":199},{"total":91,"publishYear":202,"statisticByYear":496},{},"2019-03-11","2026-08-24T20:06:28.474+00:00",[88,63],{"id":501,"createTime":502,"updateTime":503,"relativeEntities":504,"slug":505,"properties":506,"entityType":143,"verifyStatus":20,"verifyTime":502,"verifyNote":145,"languages":21,"translateLanguages":21,"viewCount":91,"primaryUrl":514,"fullTextUrl":21,"authors":515,"publicationType":148,"publisherRelationship":516,"citationCount":91,"citationInfo":565,"publishDate":567,"publishYear":202,"citationAnalyzeStatus":210,"lastCitationAnalyze":568,"indexDatabases":569,"openAccess":21,"references":21,"isForceReanalyzing":213},"bdc68b06-3551-490b-8068-848f39f06588","2023-06-13T22:55:29.558+00:00","2026-08-20T06:45:59.779+00:00",[],"Catalytic-activity-of-allamanda-mediated-phytosynthesized-anisotropic-gold-nanoparticles",{"abstract":507,"title":509,"gsPaper":511,"keywords":513},{"EN":508},"\r\n\r\n\r\nA simple and eco-friendly method has been developed for the synthesis of gold nanoparticles using allamanda flower extract. In this green synthesis method, chloroauric acid (HAuCl4) solution was reduced with the help of allamanda flower extract. The synthesized gold nanoparticles were characterized by atomic force microscopy (AFM), transmission electron microscopy (TEM) and x-ray diffraction technique for their morphological and structural analysis. The size of the spherical and triangular gold nanoparticles was found to be in the range of 5–40 and 20–70&nbsp;nm, respectively. The x-ray diffraction analysis revealed that the crystallite size of face-centered cubic (FCC) gold nanoparticles was ~ 11&nbsp;nm. These synthesized gold nanoparticles exhibit good catalytic activity towards the reduction of H2O2. The fabricated sensor exhibits good sensitivity of 21.33&nbsp;μA&nbsp;mM−1&nbsp;cm−2&nbsp;with linear relationship (R2&nbsp;=&nbsp;0.996) in the range from 2 to 10&nbsp;mM of H2O2concentration. This work can be extended further for potential applications such as antimicrobial studies, bio-imaging and drug-delivery owing to the known properties of the allamanda flower extract\r\n\r\n\r\n",{"VI":510},"Catalytic activity of allamanda mediated phytosynthesized anisotropic gold nanoparticles",{"VOID":512},"14391390083387727486",{"EN":142},"https:\u002F\u002Fwww.ans.ac.vn\u002Findex.php\u002Foms\u002Farticle\u002Fview\u002F286",[],{"url":514,"publisher":517,"properties":563},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":518,"slug":10,"properties":519,"entityType":19,"verifyStatus":20,"verifyTime":21,"verifyNote":21,"languages":21,"translateLanguages":21,"viewCount":22,"subjectFields":524,"manageAffiliations":537,"indexDatabases":543,"url":89,"thumbnailPath":21,"statistic":558,"gsStatistic":21,"type":21,"analyzePriority":21},[],{"country":520,"eissn":521,"issn":522,"title":523},{"VOID":13},{"VOID":15},{"VOID":15},{"EN":18},[525,529,533],{"id":25,"createTime":21,"updateTime":21,"relativeEntities":526,"label":527,"description":528,"parentId":21,"standard":21,"scholarHubFieldId":21},[],{"EN":28},{},{"id":31,"createTime":21,"updateTime":21,"relativeEntities":530,"label":531,"description":532,"parentId":21,"standard":21,"scholarHubFieldId":21},[],{"EN":34},{},{"id":37,"createTime":21,"updateTime":21,"relativeEntities":534,"label":535,"description":536,"parentId":21,"standard":21,"scholarHubFieldId":21},[],{"EN":40},{},[538],{"id":44,"createTime":21,"updateTime":21,"relativeEntities":539,"slug":21,"properties":540,"entityType":21,"verifyStatus":21,"verifyTime":21,"verifyNote":21,"languages":21,"translateLanguages":21,"viewCount":21,"url":21,"parentIds":542,"statistic":21},[],{"title":541},{"EN":48},[],[544,551],{"id":52,"indexDatabase":545,"url":65,"indexYears":21,"academicFieldIds":550,"indexDatabaseRanking":21},{"id":54,"createTime":21,"updateTime":21,"relativeEntities":546,"label":547,"description":548,"key":61,"publicationTags":549,"standard":21},[],{"EN":57,"VI":57},{"EN":59,"VI":60},[63,64],[67,68,69],{"id":71,"indexDatabase":552,"url":82,"indexYears":83,"academicFieldIds":557,"indexDatabaseRanking":88},{"id":73,"createTime":21,"updateTime":21,"relativeEntities":553,"label":554,"description":555,"key":79,"publicationTags":556,"standard":21},[],{"EN":76,"VI":76},{"EN":76,"VI":78},[81],[85,86,87],{"impactFactor":91,"impactFactorByYear":559,"i10Index":100,"i10IndexLast5Year":101,"totalPublication":102,"totalPublicationByYear":560,"totalCitation":109,"totalCitationByYear":561,"totalCitationPerPublication":116,"totalCitationPerPublicationByYear":562,"hindexLast5Year":123,"hindex":123},{"2011":93,"2012":94,"2013":95,"2020":96,"2021":97,"2022":98,"2023":99},{"2010":104,"2011":105,"2019":106,"2020":107,"2021":108},{"2010":111,"2011":112,"2019":113,"2020":114,"2021":115},{"2010":118,"2011":119,"2019":120,"2020":121,"2021":122},{"title":564},{"EN":198,"VI":199},{"total":91,"publishYear":202,"statisticByYear":566},{},"2019-03-05","2026-08-20T06:45:59.774+00:00",[88,63],{"id":571,"createTime":572,"updateTime":573,"relativeEntities":574,"slug":575,"properties":576,"entityType":143,"verifyStatus":20,"verifyTime":584,"verifyNote":145,"languages":21,"translateLanguages":21,"viewCount":204,"primaryUrl":585,"fullTextUrl":21,"authors":586,"publicationType":148,"publisherRelationship":587,"citationCount":91,"citationInfo":636,"publishDate":426,"publishYear":202,"citationAnalyzeStatus":210,"lastCitationAnalyze":638,"indexDatabases":639,"openAccess":21,"references":21,"isForceReanalyzing":213},"72a0a1c8-b4a4-43f6-a7e9-05e925c5f3e2","2023-06-13T23:05:59.423+00:00","2026-08-19T20:35:21.641+00:00",[],"Drug-polymer-interaction-between-glucosamine-sulfate-and-alginate-nanoparticles-FTIR-DSC-and-dielectric-spectroscopy-studies",{"abstract":577,"title":579,"gsPaper":581,"keywords":583},{"EN":578},"\r\n\r\n\r\nThis work involves the preparation and characterization of alginate nanoparticles (Alg NPs) as a new transdermal carrier for site particular transport of glucosamine sulfate (GS). The GS–Alg NPs were examined through transmission electron microscopy (TEM), Fourier transform infrared spectroscopy (FTIR), differential scanning calorimetry (DSC) and dielectric spectroscopy. GS–Alg NPs was efficiently prepared via ionic gelation method which generates favorable conditions for the entrapment of hydrophilic drugs. The TEM studies revealed that GS–Alg NPs are discrete and have spherical shapes. FTIR studies showed a spectral change of the characteristic absorptions bands of Alg NPs after encapsulation with GS because of the amine groups of GS and the carboxylic acid groups of Alg. The DSC data showed changes in the thermal behavior of GS–Alg NPs after the addition of GS indicating signs of main chemical interaction among the drug (GS) and the polymer (Alg). The absence of the drug melting endothermic peak within the DSC thermogram of GS–Alg NPs indicating that GS is molecularly dispersed in the NPs and not crystallize. From the dielectric study, it was found modifications within the dielectric loss (ε'') and conductivity (σ) values after the addition of GS. The&nbsp;ε'' and&nbsp;σ&nbsp;values of Alg NPs decreased after the addition of GS which indicated the successful encapsulation of GS within Alg NPs. Furthermore, the dielectric study indicated an increase of the activation energy and the relaxation time for the first process in the GS–Alg NPs as compared to Alg NPs. Consequently, the existing observations indicated an initiation of electrostatic interaction among the amine group of GS and carboxyl group of Alg indicating the successful encapsulation of GS inside Alg NPs which could provide favorable circumstance for the encapsulation of GS for topical management\r\n\r\n\r\n",{"VI":580},"Drug–polymer interaction between glucosamine sulfate and alginate nanoparticles: FTIR, DSC and dielectric spectroscopy studies",{"VOID":582},"4568407201701320368",{"EN":142},"2023-06-13T23:05:59.422+00:00","https:\u002F\u002Fwww.ans.ac.vn\u002Findex.php\u002Foms\u002Farticle\u002Fview\u002F497",[],{"url":585,"publisher":588,"properties":634},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":589,"slug":10,"properties":590,"entityType":19,"verifyStatus":20,"verifyTime":21,"verifyNote":21,"languages":21,"translateLanguages":21,"viewCount":22,"subjectFields":595,"manageAffiliations":608,"indexDatabases":614,"url":89,"thumbnailPath":21,"statistic":629,"gsStatistic":21,"type":21,"analyzePriority":21},[],{"country":591,"eissn":592,"issn":593,"title":594},{"VOID":13},{"VOID":15},{"VOID":15},{"EN":18},[596,600,604],{"id":25,"createTime":21,"updateTime":21,"relativeEntities":597,"label":598,"description":599,"parentId":21,"standard":21,"scholarHubFieldId":21},[],{"EN":28},{},{"id":31,"createTime":21,"updateTime":21,"relativeEntities":601,"label":602,"description":603,"parentId":21,"standard":21,"scholarHubFieldId":21},[],{"EN":34},{},{"id":37,"createTime":21,"updateTime":21,"relativeEntities":605,"label":606,"description":607,"parentId":21,"standard":21,"scholarHubFieldId":21},[],{"EN":40},{},[609],{"id":44,"createTime":21,"updateTime":21,"relativeEntities":610,"slug":21,"properties":611,"entityType":21,"verifyStatus":21,"verifyTime":21,"verifyNote":21,"languages":21,"translateLanguages":21,"viewCount":21,"url":21,"parentIds":613,"statistic":21},[],{"title":612},{"EN":48},[],[615,622],{"id":52,"indexDatabase":616,"url":65,"indexYears":21,"academicFieldIds":621,"indexDatabaseRanking":21},{"id":54,"createTime":21,"updateTime":21,"relativeEntities":617,"label":618,"description":619,"key":61,"publicationTags":620,"standard":21},[],{"EN":57,"VI":57},{"EN":59,"VI":60},[63,64],[67,68,69],{"id":71,"indexDatabase":623,"url":82,"indexYears":83,"academicFieldIds":628,"indexDatabaseRanking":88},{"id":73,"createTime":21,"updateTime":21,"relativeEntities":624,"label":625,"description":626,"key":79,"publicationTags":627,"standard":21},[],{"EN":76,"VI":76},{"EN":76,"VI":78},[81],[85,86,87],{"impactFactor":91,"impactFactorByYear":630,"i10Index":100,"i10IndexLast5Year":101,"totalPublication":102,"totalPublicationByYear":631,"totalCitation":109,"totalCitationByYear":632,"totalCitationPerPublication":116,"totalCitationPerPublicationByYear":633,"hindexLast5Year":123,"hindex":123},{"2011":93,"2012":94,"2013":95,"2020":96,"2021":97,"2022":98,"2023":99},{"2010":104,"2011":105,"2019":106,"2020":107,"2021":108},{"2010":111,"2011":112,"2019":113,"2020":114,"2021":115},{"2010":118,"2011":119,"2019":120,"2020":121,"2021":122},{"title":635},{"EN":198,"VI":199},{"total":91,"publishYear":202,"statisticByYear":637},{},"2026-08-19T20:35:21.640+00:00",[88,63],{"id":641,"createTime":642,"updateTime":643,"relativeEntities":644,"slug":645,"properties":646,"entityType":143,"verifyStatus":20,"verifyTime":642,"verifyNote":145,"languages":21,"translateLanguages":21,"viewCount":204,"primaryUrl":655,"fullTextUrl":21,"authors":656,"publicationType":148,"publisherRelationship":657,"citationCount":706,"citationInfo":707,"publishDate":709,"publishYear":354,"citationAnalyzeStatus":210,"lastCitationAnalyze":710,"indexDatabases":711,"openAccess":21,"references":21,"isForceReanalyzing":213},"46f8f073-2b44-4dc1-a745-076b9484cc1f","2023-06-13T23:06:15.318+00:00","2026-08-19T19:14:14.943+00:00",[],"Preparation-and-characterization-of-ZrO2-Er3-Yb3-nanoparticles-using-a-high-pressure-assisted-soft-template",{"abstract":647,"title":649,"gsPaper":651,"keywords":653},{"EN":648},"Nanoparticles of&nbsp;ZrO2:Er3+,&nbsp;Yb3+&nbsp;fabricated by a soft template method combined with microwave heating under high pressures were reported for the first time. Nano&nbsp;ZrO2:Er3+,&nbsp;Yb3+&nbsp;in concentrations of 0.1–15 mol% have been fabricated in the presence of soft template agent diethylene glycol or polyethylene glycol in a microwave reactor at pressures up to 55 atm. The average size of the as-synthesized nanoparticles was found to be 5–13 nm. The upconversion luminescence of the&nbsp;ZrO2:Er3+,&nbsp;Yb3+&nbsp;was found in the red region of 630–710 nm and in the green region of 510–570 nm, with excitation by an infrared diode laser at the wavelengths of 830 and 940 nm, respectively. The change in content ratio between monoclinic and tetragonal phases when the annealing temperature increases from 600 to&nbsp;1200 °C&nbsp;was investigated. The tetragonal phase content decreases and disappears for the samples annealed at&nbsp;1200 °C. The increase in the content of the monoclinic phase is suggested to be a main reason for the increase in the upconversion luminescent intensity of nano&nbsp;ZrO2:Er3+,&nbsp;Yb3+",{"VI":650},"Preparation and characterization of ZrO2:Er3+, Yb3+ nanoparticles using a high pressure assisted soft template",{"VOID":652},"7596057522025646143",{"EN":654},"keyword","https:\u002F\u002Fwww.ans.ac.vn\u002Findex.php\u002Foms\u002Farticle\u002Fview\u002F27",[],{"url":655,"publisher":658,"properties":704},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":659,"slug":10,"properties":660,"entityType":19,"verifyStatus":20,"verifyTime":21,"verifyNote":21,"languages":21,"translateLanguages":21,"viewCount":22,"subjectFields":665,"manageAffiliations":678,"indexDatabases":684,"url":89,"thumbnailPath":21,"statistic":699,"gsStatistic":21,"type":21,"analyzePriority":21},[],{"country":661,"eissn":662,"issn":663,"title":664},{"VOID":13},{"VOID":15},{"VOID":15},{"EN":18},[666,670,674],{"id":25,"createTime":21,"updateTime":21,"relativeEntities":667,"label":668,"description":669,"parentId":21,"standard":21,"scholarHubFieldId":21},[],{"EN":28},{},{"id":31,"createTime":21,"updateTime":21,"relativeEntities":671,"label":672,"description":673,"parentId":21,"standard":21,"scholarHubFieldId":21},[],{"EN":34},{},{"id":37,"createTime":21,"updateTime":21,"relativeEntities":675,"label":676,"description":677,"parentId":21,"standard":21,"scholarHubFieldId":21},[],{"EN":40},{},[679],{"id":44,"createTime":21,"updateTime":21,"relativeEntities":680,"slug":21,"properties":681,"entityType":21,"verifyStatus":21,"verifyTime":21,"verifyNote":21,"languages":21,"translateLanguages":21,"viewCount":21,"url":21,"parentIds":683,"statistic":21},[],{"title":682},{"EN":48},[],[685,692],{"id":52,"indexDatabase":686,"url":65,"indexYears":21,"academicFieldIds":691,"indexDatabaseRanking":21},{"id":54,"createTime":21,"updateTime":21,"relativeEntities":687,"label":688,"description":689,"key":61,"publicationTags":690,"standard":21},[],{"EN":57,"VI":57},{"EN":59,"VI":60},[63,64],[67,68,69],{"id":71,"indexDatabase":693,"url":82,"indexYears":83,"academicFieldIds":698,"indexDatabaseRanking":88},{"id":73,"createTime":21,"updateTime":21,"relativeEntities":694,"label":695,"description":696,"key":79,"publicationTags":697,"standard":21},[],{"EN":76,"VI":76},{"EN":76,"VI":78},[81],[85,86,87],{"impactFactor":91,"impactFactorByYear":700,"i10Index":100,"i10IndexLast5Year":101,"totalPublication":102,"totalPublicationByYear":701,"totalCitation":109,"totalCitationByYear":702,"totalCitationPerPublication":116,"totalCitationPerPublicationByYear":703,"hindexLast5Year":123,"hindex":123},{"2011":93,"2012":94,"2013":95,"2020":96,"2021":97,"2022":98,"2023":99},{"2010":104,"2011":105,"2019":106,"2020":107,"2021":108},{"2010":111,"2011":112,"2019":113,"2020":114,"2021":115},{"2010":118,"2011":119,"2019":120,"2020":121,"2021":122},{"title":705},{"EN":198,"VI":199},18,{"total":706,"publishYear":354,"statisticByYear":708},{"2011":204,"2012":204,"2013":204,"2014":205,"2016":282,"2017":204,"2018":204,"2019":282,"2020":204,"2021":284},"2010-06-01","2026-08-19T19:14:14.942+00:00",[88,63],{"id":713,"createTime":714,"updateTime":715,"relativeEntities":716,"slug":717,"properties":718,"entityType":143,"verifyStatus":20,"verifyTime":714,"verifyNote":145,"languages":21,"translateLanguages":21,"viewCount":205,"primaryUrl":726,"fullTextUrl":21,"authors":727,"publicationType":148,"publisherRelationship":728,"citationCount":119,"citationInfo":777,"publishDate":780,"publishYear":778,"citationAnalyzeStatus":210,"lastCitationAnalyze":715,"indexDatabases":781,"openAccess":21,"references":21,"isForceReanalyzing":213},"1136a423-15d7-4a0a-b366-01c74bfb768a","2023-06-13T23:07:31.208+00:00","2026-08-19T13:06:48.354+00:00",[],"Biosynthesis-of-magnetite-nanoparticles-an-eco-friendly-and-scalable-approach",{"abstract":719,"title":721,"gsPaper":723,"keywords":725},{"EN":720},"The method of preparing magnetic nanoparticles is either toxic, evolves hazardous gases or time consuming and expensive. To avoid this, it is very much needed to develop a user friendly, green synthetic route which can be able to reproduce magnetic nanoparticles in a reasonably good quantity. The present paper reports a novel method to produce magnetite nanoparticles using non-hazardous, eco-friendly, cost effective method. A protocol of producing highly crystalline bio-compatible magnetic nanoparticles using&nbsp;Carica papaya&nbsp;leaf extract is established. The rate of reducing agent is controlled by varying the molarity of ferric nitrate and it is found that 1 M concentration is a critical molarity above which the pure phase of spinel ferrite does not form. The biomolecules present in the&nbsp;Carica papaya&nbsp;leaf extract are chemically attached to the particle surface. The optimum magnetisation of the particles is found as 60 A-m2&nbsp;kg−1&nbsp;which is comparable to that obtained using chemical method. Thus, the aim of preparing magnetite nanoparticles using green synthesis route without using any expensive and toxic reducing agent is contended.",{"VI":722},"Biosynthesis of magnetite nanoparticles: an eco-friendly and scalable approach",{"VOID":724},"17932169383725605690",{"EN":142},"https:\u002F\u002Fwww.ans.ac.vn\u002Findex.php\u002Foms\u002Farticle\u002Fview\u002F832",[],{"url":726,"publisher":729,"properties":775},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":730,"slug":10,"properties":731,"entityType":19,"verifyStatus":20,"verifyTime":21,"verifyNote":21,"languages":21,"translateLanguages":21,"viewCount":22,"subjectFields":736,"manageAffiliations":749,"indexDatabases":755,"url":89,"thumbnailPath":21,"statistic":770,"gsStatistic":21,"type":21,"analyzePriority":21},[],{"country":732,"eissn":733,"issn":734,"title":735},{"VOID":13},{"VOID":15},{"VOID":15},{"EN":18},[737,741,745],{"id":25,"createTime":21,"updateTime":21,"relativeEntities":738,"label":739,"description":740,"parentId":21,"standard":21,"scholarHubFieldId":21},[],{"EN":28},{},{"id":31,"createTime":21,"updateTime":21,"relativeEntities":742,"label":743,"description":744,"parentId":21,"standard":21,"scholarHubFieldId":21},[],{"EN":34},{},{"id":37,"createTime":21,"updateTime":21,"relativeEntities":746,"label":747,"description":748,"parentId":21,"standard":21,"scholarHubFieldId":21},[],{"EN":40},{},[750],{"id":44,"createTime":21,"updateTime":21,"relativeEntities":751,"slug":21,"properties":752,"entityType":21,"verifyStatus":21,"verifyTime":21,"verifyNote":21,"languages":21,"translateLanguages":21,"viewCount":21,"url":21,"parentIds":754,"statistic":21},[],{"title":753},{"EN":48},[],[756,763],{"id":52,"indexDatabase":757,"url":65,"indexYears":21,"academicFieldIds":762,"indexDatabaseRanking":21},{"id":54,"createTime":21,"updateTime":21,"relativeEntities":758,"label":759,"description":760,"key":61,"publicationTags":761,"standard":21},[],{"EN":57,"VI":57},{"EN":59,"VI":60},[63,64],[67,68,69],{"id":71,"indexDatabase":764,"url":82,"indexYears":83,"academicFieldIds":769,"indexDatabaseRanking":88},{"id":73,"createTime":21,"updateTime":21,"relativeEntities":765,"label":766,"description":767,"key":79,"publicationTags":768,"standard":21},[],{"EN":76,"VI":76},{"EN":76,"VI":78},[81],[85,86,87],{"impactFactor":91,"impactFactorByYear":771,"i10Index":100,"i10IndexLast5Year":101,"totalPublication":102,"totalPublicationByYear":772,"totalCitation":109,"totalCitationByYear":773,"totalCitationPerPublication":116,"totalCitationPerPublicationByYear":774,"hindexLast5Year":123,"hindex":123},{"2011":93,"2012":94,"2013":95,"2020":96,"2021":97,"2022":98,"2023":99},{"2010":104,"2011":105,"2019":106,"2020":107,"2021":108},{"2010":111,"2011":112,"2019":113,"2020":114,"2021":115},{"2010":118,"2011":119,"2019":120,"2020":121,"2021":122},{"title":776},{"EN":198,"VI":199},{"total":119,"publishYear":778,"statisticByYear":779},2020,{"2021":282,"2023":204,"2024":282,"2025":204,"2026":205},"2020-06-30",[88,63],{"id":783,"createTime":784,"updateTime":785,"relativeEntities":786,"slug":787,"properties":788,"entityType":143,"verifyStatus":20,"verifyTime":796,"verifyNote":145,"languages":21,"translateLanguages":21,"viewCount":91,"primaryUrl":797,"fullTextUrl":21,"authors":798,"publicationType":148,"publisherRelationship":799,"citationCount":91,"citationInfo":848,"publishDate":850,"publishYear":202,"citationAnalyzeStatus":210,"lastCitationAnalyze":851,"indexDatabases":852,"openAccess":21,"references":21,"isForceReanalyzing":213},"fdc419da-bf4f-4a5a-a1be-2506961b3c58","2023-06-13T23:00:12.540+00:00","2026-08-19T05:06:59.697+00:00",[],"Development-of-polymer-MEMS-process-technology-as-an-approach-to-a-sustainable-production-system",{"abstract":789,"title":791,"gsPaper":793,"keywords":795},{"EN":790},"Polymethyl methacrylate (PMMA) has been proposed as a material for micro-electromechanical systems (MEMS) to initiate the research on environmentally friendly micro-nano machining technology using polymer materials. A polymer MEMS process has been developed using hot embossing and precision machining. MEMS structures less than 2 μm were successfully embossed. The PMMA layer that remained after hot embossing was removed by a polishing process to release the movable parts. A PMMA electrostatic comb-drive microactuator was fabricated. Both finger width and gap between fingers were&nbsp;5 μm, and thickness was larger than&nbsp;70 μm. An operated displacement of&nbsp;11 μm&nbsp;at a drive voltage of 100 V was obtained. It was 20 times larger than that of an identical silicon device. A torsional micro mirror device driving with vertical comb actuator was fabricated. The size of the mirror was&nbsp;1×1 mm2. The maximum tilt angle of 5.6 was obtained with driving voltage of 100 V and frequency up to 100 Hz. A chevron-shaped PMMA thermal actuator with a thickness of about&nbsp;50 μm&nbsp;has been fabricated and tested successfully. The displacement was about 5 times larger than that of a Si counterpart at the same power consumption",{"VI":792},"Development of polymer MEMS process technology as an approach to a sustainable production system",{"VOID":794},"3157021078902975065",{"EN":142},"2023-06-13T23:00:12.539+00:00","https:\u002F\u002Fwww.ans.ac.vn\u002Findex.php\u002Foms\u002Farticle\u002Fview\u002F153",[],{"url":797,"publisher":800,"properties":846},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":801,"slug":10,"properties":802,"entityType":19,"verifyStatus":20,"verifyTime":21,"verifyNote":21,"languages":21,"translateLanguages":21,"viewCount":22,"subjectFields":807,"manageAffiliations":820,"indexDatabases":826,"url":89,"thumbnailPath":21,"statistic":841,"gsStatistic":21,"type":21,"analyzePriority":21},[],{"country":803,"eissn":804,"issn":805,"title":806},{"VOID":13},{"VOID":15},{"VOID":15},{"EN":18},[808,812,816],{"id":25,"createTime":21,"updateTime":21,"relativeEntities":809,"label":810,"description":811,"parentId":21,"standard":21,"scholarHubFieldId":21},[],{"EN":28},{},{"id":31,"createTime":21,"updateTime":21,"relativeEntities":813,"label":814,"description":815,"parentId":21,"standard":21,"scholarHubFieldId":21},[],{"EN":34},{},{"id":37,"createTime":21,"updateTime":21,"relativeEntities":817,"label":818,"description":819,"parentId":21,"standard":21,"scholarHubFieldId":21},[],{"EN":40},{},[821],{"id":44,"createTime":21,"updateTime":21,"relativeEntities":822,"slug":21,"properties":823,"entityType":21,"verifyStatus":21,"verifyTime":21,"verifyNote":21,"languages":21,"translateLanguages":21,"viewCount":21,"url":21,"parentIds":825,"statistic":21},[],{"title":824},{"EN":48},[],[827,834],{"id":52,"indexDatabase":828,"url":65,"indexYears":21,"academicFieldIds":833,"indexDatabaseRanking":21},{"id":54,"createTime":21,"updateTime":21,"relativeEntities":829,"label":830,"description":831,"key":61,"publicationTags":832,"standard":21},[],{"EN":57,"VI":57},{"EN":59,"VI":60},[63,64],[67,68,69],{"id":71,"indexDatabase":835,"url":82,"indexYears":83,"academicFieldIds":840,"indexDatabaseRanking":88},{"id":73,"createTime":21,"updateTime":21,"relativeEntities":836,"label":837,"description":838,"key":79,"publicationTags":839,"standard":21},[],{"EN":76,"VI":76},{"EN":76,"VI":78},[81],[85,86,87],{"impactFactor":91,"impactFactorByYear":842,"i10Index":100,"i10IndexLast5Year":101,"totalPublication":102,"totalPublicationByYear":843,"totalCitation":109,"totalCitationByYear":844,"totalCitationPerPublication":116,"totalCitationPerPublicationByYear":845,"hindexLast5Year":123,"hindex":123},{"2011":93,"2012":94,"2013":95,"2020":96,"2021":97,"2022":98,"2023":99},{"2010":104,"2011":105,"2019":106,"2020":107,"2021":108},{"2010":111,"2011":112,"2019":113,"2020":114,"2021":115},{"2010":118,"2011":119,"2019":120,"2020":121,"2021":122},{"title":847},{"EN":198,"VI":199},{"total":91,"publishYear":202,"statisticByYear":849},{},"2019-03-04","2026-08-19T05:06:59.696+00:00",[88,63]]