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Techniques of XRD, SEM, \n                  HRTEM, FT‐IR, and UV‐vis absorption spectra were \n                  used to characterize the structure and property \n                  of the zinc oxide architectures. The \n                  experimental results show that the peanut‐like \n                  ZnO and flower‐like ZnO architectures can be \n                  obtained through changing the Zn\u003Cjats:sup>2+\u003C\u002Fjats:sup> concentration or the aging time. FT‐IR spectra indicate that the Zn\u003Cjats:sup>2+\u003C\u002Fjats:sup> is coupled with the C=O bond of the gelatin molecules \nthrough the electrostatic interaction. Based on the experimental \nprocess, the possible growth mechanism of the ZnO 3D architectures \nis proposed. 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In particular, the application of TiO\u003Cjats:sub>2\u003C\u002Fjats:sub>‐SiO\u003Cjats:sub>2\u003C\u002Fjats:sub> binary mixed oxide materials for wastewater treatment is explained herein, and it is evident from the literature survey that these mixed oxide materials have enhanced abilities to remove a wide variety of pollutants.\u003C\u002Fjats:p>","\u003Cjats:p>Việc xả thải nước thải chưa qua xử lý từ các ngành công nghiệp và hộ gia đình dẫn đến sự phát tán các chất ô nhiễm độc hại vào môi trường nước. Các quy trình oxy hóa nâng cao (AOP) đã thu hút được sự chú ý rộng rãi nhờ triển vọng làm khoáng hóa hoàn toàn các chất hữu cơ không phân hủy sinh học thành các sản phẩm vô hại với môi trường thông qua quá trình oxy hóa hóa học. Đặc biệt, quang xúc tác dị thể đã cho thấy tiềm năng to lớn trong việc làm sạch và xử lý nước cho nhiều loại chất ô nhiễm, bao gồm các chất độc tự nhiên, thuốc trừ sâu và các chất gây hại khác. Trong công trình này, chúng tôi đã tổng hợp các kỹ thuật loại bỏ khác nhau đã được áp dụng cho việc làm sạch nước. Đặc biệt, ứng dụng của các vật liệu oxit hỗn hợp TiO\u003Cjats:sub>2\u003C\u002Fjats:sub>‐SiO\u003Cjats:sub>2\u003C\u002Fjats:sub> trong xử lý nước thải sẽ được giải thích ở đây, và từ khảo sát tài liệu, rõ ràng là các vật liệu oxit hỗn hợp này có khả năng cải thiện trong việc loại bỏ nhiều loại chất ô nhiễm khác nhau.\u003C\u002Fjats:p>",{"EN":358,"VI":359},"Removal of Hazardous Pollutants from Wastewaters: Applications of TiO\u003Csub>2\u003C\u002Fsub>‐SiO\u003Csub>2\u003C\u002Fsub> Mixed Oxide Materials","Loại bỏ các chất ô nhiễm nguy hiểm từ nước thải: Ứng dụng của các vật liệu oxit hỗn hợp TiO\u003Csub>2\u003C\u002Fsub>‐SiO\u003Csub>2\u003C\u002Fsub>",{"VOID":361},"10.1155\u002F2014\u002F617405",[115],[364],"VI","https:\u002F\u002Fonlinelibrary.wiley.com\u002Fdoi\u002F10.1155\u002F2014\u002F617405",[367,389,406],{"id":368,"sortIndex":79,"researcher":24,"roles":369,"affiliations":370,"properties":382},"d3cffb74-99e8-4386-8abf-2af1d2e8d4cb",[],[371],{"id":372,"sortIndex":25,"affiliation":373,"properties":24},"dc9133c4-6456-47d4-a092-89ae8f12c966",{"id":374,"createTime":375,"updateTime":376,"relativeEntities":377,"slug":378,"properties":379,"entityType":53,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"syncStatus":23,"languages":24,"translateLanguages":24,"viewCount":25},"ce19c7de-8cdc-4934-982a-04e99d04c027","2023-11-30T15:31:55.099+00:00","2024-10-15T22:00:20.036+00:00",[],"Department-of-Chemistry-University-of-South-Dakota-Vermillion-SD-57069-USA",{"title":380},{"VI":381},"Department of Chemistry, University of South Dakota, Vermillion, SD 57069 USA",{"openalex":383,"orcid":385,"title":387},{"VOID":384},"A5066283823",{"VOID":386},"https:\u002F\u002Forcid.org\u002F0000-0002-2790-3053",{"EN":388},"Ranjit T. 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The \ninfrared absorption band of NiO nanoparticles shows blue shifts compared with that of bulk NiO.\u003C\u002Fjats:p>","\u003Cjats:p>Các hạt nano NiO với kích thước trung bình khoảng 25 nm đã được chuẩn bị thành công bằng phương pháp plasma hồ điện phân. Thành phần, hình thái, cấu trúc tinh thể vi mô, diện tích bề mặt riêng, phổ hồng ngoại và phân bố kích thước hạt của sản phẩm đã được phân tích bằng phương pháp nhiễu xạ tia X (XRD), hiển vi điện tử truyền qua (TEM) và nhiễu xạ điện tử vùng chọn tương ứng (SAED), phổ hồng ngoại biến đổi Fourier (FTIR), và hấp phụ N\u003Cjats:sub>2\u003C\u002Fjats:sub> theo phương pháp Brunauer-Emmett-Teller (BET). Kết quả thí nghiệm cho thấy rằng các hạt nano NiO có cấu trúc bcc với hình dạng cầu và phân tán tốt, phân bố kích thước hạt dao động từ 15 đến 45 nm với kích thước trung bình khoảng 25 nm, và diện tích bề mặt riêng là 33 m\u003Cjats:sup>2\u003C\u002Fjats:sup>\u002Fg. Dải hấp thụ hồng ngoại của các hạt nano NiO cho thấy sự dịch sang màu xanh so với hạt NiO khối.\u003C\u002Fjats:p>",{"EN":1410,"VI":1411},"Preparation and Characterization of NiO Nanoparticles by  Anodic Arc Plasma Method","Chuẩn bị và Đặc trưng Hạt Nano NiO Bằng Phương Pháp Plasma Hồ Điện 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Gansu, China",{"id":1435,"sortIndex":83,"affiliation":1436,"properties":24},"ac0a172a-b786-4252-a480-ce8787891a41",{"id":1437,"createTime":1438,"updateTime":1438,"relativeEntities":1439,"slug":1440,"properties":1441,"entityType":53,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"syncStatus":23,"languages":24,"translateLanguages":24,"viewCount":25},"508e517f-2f2c-4eae-ad1d-a6d2a666a73a","2024-10-12T04:43:54.755+00:00",[],"State-Key-Laboratory-of-Advanced-New-Nonferrous-Materials-Lanzhou-University-of-Technology-Lanzhou-730050-Gansu-China",{"title":1442},{"EN":1443},"State Key Laboratory of Advanced New Nonferrous Materials, Lanzhou University of Technology, Lanzhou 730050, Gansu, China",{"openalex":1445,"orcid":1447,"title":1449},{"VOID":1446},"A5101809849",{"VOID":1448},"https:\u002F\u002Forcid.org\u002F0000-0002-0289-1949",{"EN":1450},"Hongxia 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D., 1997, Preparation of nanocrystalline NiO in mixed solvent, Journal of China University of Science and Technology, 27, 346",{},{"id":24,"text":1613,"url":24,"identifiers":1614},"10.1016\u002FS0009‐2614(02)00996‐X",{"doi":1613},{"id":24,"text":1616,"url":24,"identifiers":1617},"10.1016\u002FS1359‐6462(02)00108‐2",{"doi":1616},{"id":24,"text":1619,"url":24,"identifiers":1620},"10.1016\u002Fj.matlet.2005.10.008",{"doi":1619},{"id":1622,"createTime":1623,"updateTime":1624,"relativeEntities":1625,"slug":1626,"properties":1627,"entityType":111,"verifyStatus":112,"verifyTime":1623,"verifyNote":113,"syncStatus":23,"languages":1641,"translateLanguages":1642,"viewCount":25,"primaryUrl":1643,"fullTextUrl":24,"authors":1644,"publicationType":208,"publisherRelationship":1747,"citationCount":1776,"citationInfo":1777,"publishDate":1784,"publishYear":1785,"citationAnalyzeStatus":23,"lastCitationAnalyze":24,"indexDatabases":24,"openAccess":24,"references":1786,"isForceReanalyzing":340},"0faa8cd2-b689-49be-872e-e60a5e004f53","2024-11-25T19:05:19.282+00:00","2025-02-13T22:37:25.870+00:00",[],"Influence-of-pH-Precursor-Concentration-Growth-Time-and-Temperature-on-the-Morphology-of-ZnO-Nanostructures-Grown-by-the-Hydrothermal-Method",{"mag":1628,"keywords":1630,"openalex":1631,"abstract":1633,"title":1636,"doi":1639},{"VOID":1629},"2022423007",{"VI":351},{"VOID":1632},"W2022423007",{"EN":1634,"VI":1635},"\u003Cjats:p>We investigated the influence of the pH value, precursor concentration (\u003Cjats:italic>C\u003C\u002Fjats:italic>), growth time and temperature on the morphology of zinc oxide (ZnO) nanostructures. The pH of the starting solution was varied from 1.8 to 12.5. It was found that the final pH reaches an inherent value of 6.6 independently of the initial pH solution. Various ZnO structures of nanotetrapod-like, flower-like, and urchin-like morphology were obtained at alkaline pH (8 to 12.5) whereas for pH solution lower than 8 rod-like nanostructures occurred. Moreover, we observed the erosion of the nanorods for a pH value less than 4.6. By changing the concentrations the density and size were also varied. On going from a high (\u003Cmml:math xmlns:mml=\"http:\u002F\u002Fwww.w3.org\u002F1998\u002FMath\u002FMathML\">\u003Cmml:mi>C\u003C\u002Fmml:mi>\u003Cmml:mo>&gt;\u003C\u002Fmml:mo>\u003Cmml:mn>400\u003C\u002Fmml:mn>\u003C\u002Fmml:math> mM) to lower (\u003Cmml:math xmlns:mml=\"http:\u002F\u002Fwww.w3.org\u002F1998\u002FMath\u002FMathML\">\u003Cmml:mi>C\u003C\u002Fmml:mi>\u003Cmml:mo>&lt;\u003C\u002Fmml:mo>\u003Cmml:mn>25\u003C\u002Fmml:mn>\u003C\u002Fmml:math> mM)\u003Cjats:italic>C\u003C\u002Fjats:italic>, the resulted ZnO nanostructures change from a film to nanorods (NRs) and finally nanowires (NWs). It was also found that the length and diameter of ZnO NRs follow a linear relation with time up to 10 hours, above which no further increase was observed. Finally the effect of growth temperature was seen as an influence on the aspect ratio.\u003C\u002Fjats:p>","\u003Cjats:p>Chúng tôi đã nghiên cứu ảnh hưởng của giá trị pH, nồng độ precursor (\u003Cjats:italic>C\u003C\u002Fjats:italic>), thời gian tăng trưởng và nhiệt độ đến hình thái của các cấu trúc nano oxit kẽm (ZnO). Giá trị pH của dung dịch khởi đầu được thay đổi từ 1.8 đến 12.5. Kết quả cho thấy giá trị pH cuối cùng đạt giá trị tự nhiên là 6.6 mà không phụ thuộc vào pH ban đầu của dung dịch. Nhiều cấu trúc ZnO với hình thái giống chân đạp bốn, giống hoa và giống nhím đã được thu nhận tại pH kiềm (từ 8 đến 12.5), trong khi đó đối với dung dịch có pH thấp hơn 8, các cấu trúc nano dạng que xuất hiện. Hơn nữa, chúng tôi cũng quan sát thấy sự xói mòn của các nanorods khi pH thấp hơn 4.6. Bằng cách thay đổi nồng độ, mật độ và kích thước cũng được điều chỉnh. Khi chuyển từ nồng độ cao (\u003Cmml:math xmlns:mml=\"http:\u002F\u002Fwww.w3.org\u002F1998\u002FMath\u002FMathML\">\u003Cmml:mi>C\u003C\u002Fmml:mi>\u003Cmml:mo>&gt;\u003C\u002Fmml:mo>\u003Cmml:mn>400\u003C\u002Fmml:mn>\u003C\u002Fmml:math> mM) xuống thấp hơn (\u003Cmml:math xmlns:mml=\"http:\u002F\u002Fwww.w3.org\u002F1998\u002FMath\u002FMathML\">\u003Cmml:mi>C\u003C\u002Fmml:mi>\u003Cmml:mo>&lt;\u003C\u002Fmml:mo>\u003Cmml:mn>25\u003C\u002Fmml:mn>\u003C\u002Fmml:math> mM)\u003Cjats:italic>C\u003C\u002Fjats:italic>, các cấu trúc nano ZnO nhận được đã thay đổi từ màng sang nanorods (NRs) và cuối cùng là nanowires (NWs). Ngoài ra, chúng tôi còn phát hiện rằng chiều dài và đường kính của ZnO NRs tuân theo mối quan hệ tuyến tính với thời gian lên đến 10 giờ, sau đó không có sự gia tăng nào được quan sát thấy. Cuối cùng, ảnh hưởng của nhiệt độ tăng trưởng được ghi nhận là có tác động đến tỷ lệ chiều cao.",{"EN":1637,"VI":1638},"Influence of pH, Precursor Concentration, Growth Time, and Temperature on the Morphology of ZnO Nanostructures Grown by the Hydrothermal Method","Ảnh hưởng của pH, nồng độ precursor, thời gian tăng trưởng và nhiệt độ đến hình thái của các cấu trúc nano ZnO được tạo ra bằng phương pháp thủy nhiệt",{"VOID":1640},"10.1155\u002F2011\u002F269692",[115],[364],"http:\u002F\u002Fwww.hindawi.com\u002Fjournals\u002Fjnm\u002F2011\u002F269692\u002F",[1645,1664,1681,1698,1715,1730],{"id":1646,"sortIndex":25,"researcher":24,"roles":1647,"affiliations":1648,"properties":1659},"86bd3c7e-026a-4d9b-bb4e-89ccbc1fad2f",[],[1649],{"id":1650,"sortIndex":25,"affiliation":1651,"properties":24},"e1220867-20a7-4cc8-8fb3-2607ba071c5b",{"id":1652,"createTime":1653,"updateTime":1653,"relativeEntities":1654,"slug":1655,"properties":1656,"entityType":53,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"syncStatus":23,"languages":24,"translateLanguages":24,"viewCount":25},"e50605c9-11b4-4a22-b1f4-a0200e2565d1","2024-11-25T19:05:19.292+00:00",[],"Department-of-Science-and-Technology-Link%C3%B6ping-University-Norrk%C3%B6ping-Campus-60174-Norrk%C3%B6ping-Sweden",{"title":1657},{"EN":1658},"Department of Science and Technology, Linköping University, Norrköping Campus, 60174 Norrköping, Sweden",{"openalex":1660,"title":1662},{"VOID":1661},"A5040789270",{"EN":1663},"G. 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Journal of Physical Chemistry B, 105, 3350, 10.1021\u002Fjp010026s",{"doi":1856},"10.1021\u002Fjp010026s",{"id":24,"text":1858,"url":24,"identifiers":1859},"10.1002\u002Fadma.200390108",{"doi":1858},{"id":24,"text":1861,"url":24,"identifiers":1862},"10.1021\u002Fjp802545e",{"doi":1861},{"id":1864,"createTime":1865,"updateTime":1866,"relativeEntities":1867,"slug":1868,"properties":1869,"entityType":111,"verifyStatus":112,"verifyTime":1865,"verifyNote":113,"syncStatus":23,"languages":1884,"translateLanguages":1885,"viewCount":25,"primaryUrl":1886,"fullTextUrl":24,"authors":1887,"publicationType":208,"publisherRelationship":1953,"citationCount":1982,"citationInfo":1983,"publishDate":1990,"publishYear":1991,"citationAnalyzeStatus":23,"lastCitationAnalyze":24,"indexDatabases":24,"openAccess":24,"references":1992,"isForceReanalyzing":340},"35a36110-3dc0-4105-a4d9-d8cd71a1e462","2024-09-19T03:01:48.128+00:00","2025-02-13T22:36:28.512+00:00",[],"A-Review-on-Nanofluids-Fabrication-Stability-and-Thermophysical-Properties",{"mag":1870,"keywords":1872,"openalex":1874,"abstract":1876,"title":1879,"doi":1882},{"VOID":1871},"2807685714",{"VI":1873},"nanofluid, chất lỏng truyền nhiệt, độ ổn định, tính chất nhiệt vật lý, thương mại hóa",{"VOID":1875},"W2807685714",{"EN":1877,"VI":1878},"\u003Cjats:p>Nanofluids have been receiving great attention in recent years due to their potential usage, not only as an enhanced thermophysical heat transfer fluid but also because of their great importance in applications such as drug delivery and oil recovery. Nevertheless, there are some challenges that need to be solved before nanofluids can become commercially acceptable. The main challenges of nanofluids are their stability and operational performance. Nanofluids stability is significantly important in order to maintain their thermophysical properties after fabrication for a long period of time. Therefore, enhancing nanofluids stability and understanding nanofluid behaviour are part of the chain needed to commercialise such type of advanced fluids. In this context, the aim of this article is to summarise the current progress on the study of nanofluids, such as the fabrication procedures, stability evaluation mechanism, stability enhancement procedures, nanofluids thermophysical properties, and current commercialisation challenges. Finally, the article identifies some possible opportunities for future research that can bridge the gap between in-lab research and commercialisation of nanofluids.\u003C\u002Fjats:p>","\u003Cjats:p>Nanofluid đã nhận được sự chú ý lớn trong những năm gần đây nhờ khả năng sử dụng của chúng, không chỉ như một chất lỏng truyền nhiệt có tính chất nhiệt vật lý được nâng cao mà còn vì tầm quan trọng lớn của chúng trong các ứng dụng như vận chuyển thuốc và khai thác dầu. Tuy nhiên, vẫn còn một số thách thức cần phải giải quyết trước khi nanofluid có thể trở thành sản phẩm thương mại được chấp nhận. Những thách thức chính của nanofluid là độ ổn định và hiệu suất hoạt động của chúng. Độ ổn định của nanofluid là rất quan trọng để duy trì các tính chất nhiệt vật lý của chúng sau khi chế tạo trong một khoảng thời gian dài. Do đó, việc nâng cao độ ổn định của nanofluid và hiểu rõ hành vi của nanofluid là phần cần thiết trong chuỗi để thương mại hóa loại chất lỏng tiên tiến này. Trong bối cảnh này, mục tiêu của bài viết này là tóm tắt những tiến triển hiện tại trong nghiên cứu nanofluid, chẳng hạn như quy trình chế tạo, cơ chế đánh giá độ ổn định, quy trình nâng cao độ ổn định, các tính chất nhiệt vật lý của nanofluid và những thách thức thương mại hóa hiện tại. Cuối cùng, bài viết chỉ ra một số cơ hội nghiên cứu tiềm năng trong tương lai có thể thu hẹp khoảng cách giữa nghiên cứu trong phòng thí nghiệm và thương mại hóa nanofluid.\u003C\u002Fjats:p>",{"EN":1880,"VI":1881},"A Review on Nanofluids: Fabrication, Stability, and Thermophysical Properties","Tổng Quan Về Nanofluid: Quy Trình Chế Tạo, Tính Ổn Định và Tính Chất Nhiệt Vật Lý",{"VOID":1883},"10.1155\u002F2018\u002F6978130",[115],[364],"https:\u002F\u002Fwww.hindawi.com\u002Fjournals\u002Fjnm\u002F2018\u002F6978130\u002F",[1888,1909,1926],{"id":1889,"sortIndex":83,"researcher":24,"roles":1890,"affiliations":1891,"properties":1902},"c9a633e3-ff25-497a-8ac3-3b0e8106da74",[],[1892],{"id":1893,"sortIndex":25,"affiliation":1894,"properties":24},"83a508cc-edc6-4c23-bcde-1262385c1890",{"id":1895,"createTime":1896,"updateTime":1896,"relativeEntities":1897,"slug":1898,"properties":1899,"entityType":53,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"syncStatus":23,"languages":24,"translateLanguages":24,"viewCount":25},"fbd50328-3fb3-4cdc-9dba-f17c62bac396","2024-09-19T03:01:48.171+00:00",[],"School-of-Water-Energy-and-Environment-SWEE-Cranfield-University-Cranfield-Bedfordshire-MK430AL-UK",{"title":1900},{"EN":1901},"School of Water, Energy and Environment (SWEE), Cranfield University, Cranfield, Bedfordshire MK430AL, UK",{"openalex":1903,"orcid":1905,"title":1907},{"VOID":1904},"A5089057301",{"VOID":1906},"https:\u002F\u002Forcid.org\u002F0000-0002-1578-0113",{"EN":1908},"Joao A. 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nghệ nanobio, hạt nano, tổng hợp, đặc trưng, ứng dụng y sinh, ứng dụng môi trường",{"VOID":2821},"W1976827948",{"EN":2823,"VI":2824},"\u003Cjats:p>Nanobiotechnology is gaining tremendous impetus in this era owing to its ability to modulate metals into their nanosize, which efficiently changes their chemical, physical, and optical properties. Accordingly, considerable attention is being given to the development of novel strategies for the synthesis of different kinds of nanoparticles of specific composition and size using biological sources. However, most of the currently available techniques are expensive, environmentally harmful, and inefficient with respect to materials and energy use. Several factors such as the method used for synthesis, pH, temperature, pressure, time, particle size, pore size, environment, and proximity greatly influence the quality and quantity of the synthesized nanoparticles and their characterization and applications. Additionally, characterization of the synthesized nanoparticles is essential to their potential use in various drug delivery and biomedical applications. The present review highlights various parameters affecting the synthesis of nanoparticles by green nanobiotechnology and different techniques used for characterizing the nanoparticles for their potential use in biomedical and environmental applications.\u003C\u002Fjats:p>","\u003Cjats:p>Công nghệ nanobio đang ngày càng trở nên quan trọng trong thời đại này nhờ vào khả năng điều chế kim loại thành kích thước nano, điều này làm thay đổi hiệu quả các tính chất hóa học, vật lý và quang học của chúng. Do đó, có sự chú ý đáng kể được dành cho việc phát triển các chiến lược mới trong việc tổng hợp các loại hạt nano khác nhau với thành phần và kích thước cụ thể bằng nguồn sinh học. Tuy nhiên, hầu hết các kỹ thuật hiện có đều tốn kém, gây hại cho môi trường và không hiệu quả về mặt vật liệu và năng lượng. Nhiều yếu tố như phương pháp tổng hợp, pH, nhiệt độ, áp suất, thời gian, kích thước hạt, kích thước lỗ, môi trường, và sự gần gũi đều ảnh hưởng lớn đến chất lượng và số lượng của các hạt nano được tổng hợp cũng như việc đặc trưng và ứng dụng của chúng. Ngoài ra, việc đặc trưng các hạt nano đã tổng hợp là rất cần thiết cho việc sử dụng tiềm năng của chúng trong các ứng dụng giao thuốc và y sinh khác nhau. Bài đánh giá hiện tại đã làm nổi bật các thông số khác nhau ảnh hưởng đến quá trình tổng hợp hạt nano bằng công nghệ nanobio xanh và các kỹ thuật khác nhau được sử dụng để đặc trưng các hạt nano nhằm phục vụ cho ứng dụng tiềm năng trong lĩnh vực y sinh và môi trường.\u003C\u002Fjats:p>",{"EN":2826,"VI":2827},"Green Nanobiotechnology: Factors Affecting Synthesis and Characterization Techniques","Công Nghệ Nanobio Xanh: Các Yếu Tố Ảnh Hưởng Đến Tổng Hợp Và Kỹ Thuật Đặc Trưng",{"VOID":2829},"10.1155\u002F2014\u002F417305",[115],[364],"https:\u002F\u002Fonlinelibrary.wiley.com\u002Fdoi\u002F10.1155\u002F2014\u002F417305",[2834],{"id":2835,"sortIndex":25,"researcher":24,"roles":2836,"affiliations":2837,"properties":2849},"a67c6815-0087-406a-90de-fcb4f4f2335d",[],[2838],{"id":2839,"sortIndex":25,"affiliation":2840,"properties":24},"59acfc39-e135-4f23-9083-7b296346e7b4",{"id":2841,"createTime":2842,"updateTime":2843,"relativeEntities":2844,"slug":2845,"properties":2846,"entityType":53,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"syncStatus":23,"languages":24,"translateLanguages":24,"viewCount":25},"4314001e-a6a4-4220-8597-689e8450fd00","2024-01-05T16:07:03.069+00:00","2024-09-20T01:17:16.985+00:00",[],"School-of-Biotechnology-Yeungnam-University-Gyeongsan-Gyeongbuk-712-749-Republic-of-Korea",{"title":2847},{"VI":2848},"School of Biotechnology, Yeungnam University, Gyeongsan, Gyeongbuk 712-749, Republic of Korea",{"openalex":2850,"orcid":2852,"title":2854},{"VOID":2851},"A5089392152",{"VOID":2853},"https:\u002F\u002Forcid.org\u002F0000-0003-4118-4355",{"EN":2855},"Jayanta Kumar Patra",{"url":24,"publisher":2857,"properties":2880},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":2858,"slug":10,"properties":2859,"entityType":22,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"syncStatus":23,"languages":24,"translateLanguages":24,"viewCount":25,"subjectFields":2865,"manageAffiliations":2866,"indexDatabases":2867,"url":76,"thumbnailPath":24,"statistic":2875,"gsStatistic":24,"type":24,"analyzePriority":24},[],{"country":2860,"issn":2861,"introduce":2862,"eissn":2863,"title":2864},{"VOID":13},{"VOID":15},{"EN":17},{"VOID":19},{"EN":21},[],[],[2868],{"id":57,"indexDatabase":2869,"url":70,"indexYears":71,"academicFieldIds":2874,"indexDatabaseRanking":75},{"id":59,"createTime":60,"updateTime":61,"relativeEntities":2870,"label":2871,"description":2872,"key":67,"publicationTags":2873,"standard":24},[],{"EN":64,"VI":64},{"EN":64,"VI":66},[69],[73,74],{"impactFactor":25,"impactFactorByYear":2876,"i10Index":80,"i10IndexLast5Year":80,"totalPublication":81,"totalPublicationByYear":2877,"totalCitation":84,"totalCitationByYear":2878,"totalCitationPerPublication":88,"totalCitationPerPublicationByYear":2879,"hindexLast5Year":81,"hindex":81},{"2021":79},{"2019":79,"2020":83,"2023":83},{"2019":86,"2020":87,"2023":81},{"2019":87,"2020":87,"2023":81},{"volume":2881,"issue":2882},{"VOID":449},{"VOID":237},566,{"total":2883,"publishYear":24,"statisticByYear":2885},{"2016":81,"2017":88,"2018":2886,"2019":2887,"2020":2888,"2021":2889,"2022":2890,"2023":2891,"2024":1988},19,46,56,95,113,139,[2893,2896,2899,2902,2905,2908,2911,2914,2917,2920,2923,2926,2929,2932,2935,2938,2941,2944,2947,2950,2953,2956,2959,2962,2965,2968,2971,2974,2977,2980,2983,2986,2989,2992,2995,2998,3001,3004,3007,3010,3013,3016,3019,3022,3025,3028,3031,3034,3037,3040,3043,3046,3049,3052,3055,3058,3061,3064,3067,3070,3073,3076,3079,3082,3085,3088,3091,3094,3097,3100,3103,3106,3109,3112,3115,3118,3121,3124,3127,3130,3133,3136,3139,3142,3145,3148,3151,3154,3157,3160,3163,3166,3169,3172,3175,3178],{"id":24,"text":2894,"url":24,"identifiers":2895},"Pal S. 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R., 2004, Applications of Scanning Electron Microscopy and Energy Dispersive Spectroscopy (SEM\u002FEDS) to Practical Tribology Problems",{},{"id":24,"text":3179,"url":24,"identifiers":3180},"10.1080\u002F01496398008068506",{"doi":3179},{"id":3182,"createTime":3183,"updateTime":3184,"relativeEntities":3185,"slug":3186,"properties":3187,"entityType":111,"verifyStatus":112,"verifyTime":3183,"verifyNote":113,"syncStatus":23,"languages":3201,"translateLanguages":3202,"viewCount":25,"primaryUrl":3203,"fullTextUrl":24,"authors":3204,"publicationType":208,"publisherRelationship":3340,"citationCount":3368,"citationInfo":3369,"publishDate":3379,"publishYear":3380,"citationAnalyzeStatus":23,"lastCitationAnalyze":24,"indexDatabases":24,"openAccess":24,"references":3381,"isForceReanalyzing":340},"f0e9f3e1-1df2-47b4-adf1-4feff0140a4e","2024-11-28T17:25:45.837+00:00","2025-02-13T22:34:33.157+00:00",[],"A-Review-of-the-Effect-of-Processing-Variables-on-the-Fabrication-of-Electrospun-Nanofibers-for-Drug-Delivery-Applications",{"mag":3188,"keywords":3190,"openalex":3191,"abstract":3193,"title":3196,"doi":3199},{"VOID":3189},"2009271116",{"VI":351},{"VOID":3192},"W2009271116",{"EN":3194,"VI":3195},"\u003Cjats:p>Electrospinning is a fast emerging technique for producing ultrafine fibers by utilizing electrostatic repulsive forces. The technique has gathered much attention due to the emergence of \t nanotechnology that sparked worldwide research interest in nanomaterials for their preparation and application in biomedicine and drug delivery. Electrospinning is a simple, adaptable, cost‐effective, and versatile technique for producing nanofibers. For effective and efficient use of the technique,several processing parameters need to be optimized for fabricating polymeric nanofibers. The nanofiber morphology, size, porosity, surface area, and topography can be refined by varying these parameters. Such flexibility and diversity in nanofiber fabrication by electrospinning has broadened the horizons for widespread application of nanofibers in the areas of drug and gene delivery, wound dressing, and tissue engineering. Drug‐loaded electrospun nanofibers have been used in implants, transdermal systems, wound dressings, and as devices for aiding the prevention of postsurgical abdominal adhesions and infection. They show great promise for use in drug delivery provided that one can confidently control the processing variables during fabrication. This paper provides a concise incursion into the application of electrospun nanofibers in drug delivery and cites pertinent processing parameters that may influence the performance of the nanofibers when applied to drug delivery.\u003C\u002Fjats:p>","\u003Cjats:p>Điện xơ hóa là một kỹ thuật mới nổi nhanh chóng trong việc sản xuất sợi siêu mịn bằng cách tận dụng lực đẩy tĩnh điện. Kỹ thuật này đã thu hút nhiều sự chú ý do sự phát triển của công nghệ nano, điều này đã kích thích sự quan tâm nghiên cứu trên toàn cầu đối với vật liệu nano vì sự chuẩn bị và ứng dụng của chúng trong y sinh và phân phối thuốc. Điện xơ hóa là một kỹ thuật đơn giản, có thể điều chỉnh, tiết kiệm chi phí và linh hoạt trong việc sản xuất nanofiber. Để sử dụng kỹ thuật một cách hiệu quả và hiệu suất cao, một số tham số quy trình cần được tối ưu hóa để chế tạo nanofiber polymer. Hình thái, kích thước, độ xốp, diện tích bề mặt và địa hình của nanofiber có thể được tinh chỉnh bằng cách thay đổi các tham số này. Sự linh hoạt và đa dạng trong việc chế tạo nanofiber bằng điện xơ hóa đã mở rộng khả năng ứng dụng rộng rãi của nanofiber trong các lĩnh vực phân phối thuốc và gen, băng gạc vết thương và kỹ thuật mô. Nanofiber điện xơ hóa chứa thuốc đã được sử dụng trong cấy ghép, hệ thống xuyên da, băng gạc vết thương và như những thiết bị hỗ trợ ngăn ngừa dính bụng sau phẫu thuật và nhiễm trùng. Chúng cho thấy triển vọng lớn trong việc sử dụng cho phân phối thuốc, miễn là có thể kiểm soát đáng tin cậy các biến điều khiển trong quá trình chế tạo. Bài báo này cung cấp một cái nhìn ngắn gọn về ứng dụng của nanofiber điện xơ hóa trong phân phối thuốc và trích dẫn các tham số quy trình liên quan có thể ảnh hưởng đến hiệu suất của nanofiber khi được áp dụng trong phân phối thuốc.\u003C\u002Fjats:p>",{"EN":3197,"VI":3198},"A Review of the Effect of Processing Variables on the Fabrication of Electrospun Nanofibers for Drug Delivery Applications","Đánh Giá Ảnh Hưởng Của Các Biến Điều Khiển Đến Quy Trình Chế Tạo Nanofiber Electrospun Dùng Trong Ứng Dụng Phân Phối Thuốc",{"VOID":3200},"10.1155\u002F2013\u002F789289",[115],[364],"https:\u002F\u002Fonlinelibrary.wiley.com\u002Fdoi\u002F10.1155\u002F2013\u002F789289",[3205,3224,3241,3258,3278,3295,3310,3325],{"id":3206,"sortIndex":81,"researcher":24,"roles":3207,"affiliations":3208,"properties":3219},"35973830-cc8a-4213-9dde-5e2068a3b24a",[],[3209],{"id":3210,"sortIndex":25,"affiliation":3211,"properties":24},"7906ea12-5b3c-4193-a984-1800778efd8b",{"id":3212,"createTime":3213,"updateTime":3213,"relativeEntities":3214,"slug":3215,"properties":3216,"entityType":53,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"syncStatus":23,"languages":24,"translateLanguages":24,"viewCount":25},"d05fdea9-5ee7-412e-898e-21ccfb2ffbbf","2024-11-28T17:25:45.853+00:00",[],"Department-of-Pharmacy-and-Pharmacology-Faculty-of-Health-Sciences-University-of-the-Witwatersrand-7-York-Road-Parktown-Johannesburg-2193-South-Africa-",{"title":3217},{"EN":3218},"Department of Pharmacy and Pharmacology, Faculty of Health Sciences, University of the Witwatersrand, 7 York Road, Parktown, Johannesburg 2193, South Africa.",{"openalex":3220,"title":3222},{"VOID":3221},"A5000042096",{"EN":3223},"Lomas K. 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Aerogels are synthesized from molecular precursors by sol‐gel processing. Special drying techniques must be applied to replace the pore liquid with air while maintaining the solid network. Supercritical drying is most common; however, recently developed methods allow removal of the liquid at atmospheric pressure after chemical modification of the inner surface of the gels, leaving only a porous silica network filled with air. Therefore, by considering the surprising properties of aerogels, the present review addresses synthesis of silica aerogels by the sol‐gel method, as well as drying techniques and applications in current industrial development and scientific research.\u003C\u002Fjats:p>","\u003Cjats:p>Aerogel silica đã thu hút được rất nhiều sự quan tâm trong khoa học và công nghệ nhờ vào độ mật độ khối thấp (lên tới 95% thể tích của chúng là không khí), tính kỵ nước, độ dẫn nhiệt thấp, diện tích bề mặt cao và tính trong suốt quang học. Aerogel được tổng hợp từ các tiền chất phân tử thông qua quá trình sol-gel. Các kỹ thuật sấy đặc biệt phải được áp dụng để thay thế dung dịch trong các lỗ rỗng bằng không khí trong khi vẫn duy trì mạng lưới rắn. Sấy siêu tới hạn là phương pháp phổ biến nhất; tuy nhiên, các phương pháp mới phát triển gần đây cho phép loại bỏ dung dịch dưới áp suất khí quyển sau khi chỉnh sửa hóa học bề mặt bên trong của gel, chỉ để lại một mạng lưới silica rỗng đầy không khí. Do đó, với việc xem xét các tính chất bất ngờ của aerogel, bài đánh giá hiện tại đề cập đến tổng hợp aerogel silica bằng phương pháp sol-gel, cũng như các kỹ thuật sấy và ứng dụng trong phát triển công nghiệp hiện tại và nghiên cứu khoa học.",{"EN":3876,"VI":3877},"Silica Aerogel: Synthesis and Applications","Aerogel Silica: Tổng hợp và Ứng dụng",{"VOID":3879},"10.1155\u002F2010\u002F409310",[115],[364],"https:\u002F\u002Fonlinelibrary.wiley.com\u002Fdoi\u002F10.1155\u002F2010\u002F409310",[3884,3906,3921,3941,3958],{"id":3885,"sortIndex":83,"researcher":24,"roles":3886,"affiliations":3887,"properties":3899},"33ee8548-0bac-4b89-aff6-4eac90caf4bd",[],[3888],{"id":3889,"sortIndex":25,"affiliation":3890,"properties":24},"bdf0bf9d-5b86-4d88-81d3-08c4c57fba28",{"id":3891,"createTime":3892,"updateTime":3893,"relativeEntities":3894,"slug":3895,"properties":3896,"entityType":53,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"syncStatus":23,"languages":24,"translateLanguages":24,"viewCount":25},"405fe77e-0c22-4bd3-8622-2411c5f1a9b0","2024-01-15T00:27:47.242+00:00","2024-12-19T08:12:39.767+00:00",[],"Department-of-Materials-Science-Engineering-Yonsei-University-Seoul-Republic-of-Korea",{"title":3897},{"VI":3898},"Department of Materials Science & Engineering, Yonsei University, Seoul, Republic of Korea",{"openalex":3900,"orcid":3902,"title":3904},{"VOID":3901},"A5065795151",{"VOID":3903},"https:\u002F\u002Forcid.org\u002F0000-0003-0726-0203",{"EN":3905},"In‐Keun Jung",{"id":3907,"sortIndex":25,"researcher":24,"roles":3908,"affiliations":3909,"properties":3916},"4ba05be4-8894-4433-9c9b-bddba57227d6",[],[3910],{"id":3911,"sortIndex":25,"affiliation":3912,"properties":24},"be4cdbda-5bcd-495f-a41f-1be36a43c05e",{"id":3891,"createTime":3892,"updateTime":3893,"relativeEntities":3913,"slug":3895,"properties":3914,"entityType":53,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"syncStatus":23,"languages":24,"translateLanguages":24,"viewCount":25},[],{"title":3915},{"VI":3898},{"openalex":3917,"title":3919},{"VOID":3918},"A5064463390",{"EN":3920},"Jyoti L. 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NEDU-05-02 United States Navy Experimental Diving Unit.",{"doi":4208},"10.21236\u002FADA442746",{"id":4210,"createTime":4211,"updateTime":4212,"relativeEntities":4213,"slug":4214,"properties":4215,"entityType":111,"verifyStatus":112,"verifyTime":4229,"verifyNote":113,"syncStatus":23,"languages":4230,"translateLanguages":4231,"viewCount":25,"primaryUrl":4232,"fullTextUrl":24,"authors":4233,"publicationType":208,"publisherRelationship":4326,"citationCount":4355,"citationInfo":4356,"publishDate":4363,"publishYear":4364,"citationAnalyzeStatus":23,"lastCitationAnalyze":24,"indexDatabases":24,"openAccess":24,"references":4365,"isForceReanalyzing":340},"d44b5a91-2a78-4158-b94b-ca8a536bd37b","2024-10-01T09:53:46.054+00:00","2025-02-13T22:32:38.599+00:00",[],"Smart-Nanoparticles-for-Drug-Delivery-Application-Development-of-Versatile-Nanocarrier-Platforms-in-Biotechnology-and-Nanomedicine",{"mag":4216,"keywords":4218,"openalex":4219,"abstract":4221,"title":4224,"doi":4227},{"VOID":4217},"2917535482",{"VI":351},{"VOID":4220},"W2917535482",{"EN":4222,"VI":4223},"\u003Cjats:p>The study of nanostructured drug delivery systems allows the development of novel platforms for the efficient transport and controlled release of drug molecules in the harsh microenvironment of diseased tissues of living systems, thus offering a wide range of functional nanoplatforms for smart application in biotechnology and nanomedicine. This article highlights recent advances of smart nanocarriers composed of organic (including polymeric micelles and vesicles, liposomes, dendrimers, and hydrogels) and inorganic (including quantum dots, gold and mesoporous silica nanoparticles) materials. Despite the remarkable developments of recent synthetic methodologies, most of all nanocarriers’ action is associated with a number of unwanted side effects that diminish their efficient use in biotechnology and nanomedicine applications. This highlights some critical issues in the design and engineering of nanocarrier systems for biotechnology applications, arising from the complex environment and multiform interactions established within the specific biological media.\u003C\u002Fjats:p>","Nghiên cứu về các hệ thống chuyển giao thuốc cấu trúc nano cho phép phát triển các nền tảng mới cho việc vận chuyển hiệu quả và phóng thích kiểm soát các phân tử thuốc trong môi trường vi mô khắc nghiệt của các mô bệnh lý của các hệ sinh vật sống, từ đó cung cấp một loạt các nền tảng nano chức năng cho ứng dụng thông minh trong sinh học phân tử và y học nano. Bài báo này nhấn mạnh những tiến bộ gần đây của các nanocarriers thông minh được cấu thành từ các vật liệu hữu cơ (bao gồm micelles và vesicles polyme, liposome, dendrimer và hydrogels) và vô cơ (bao gồm quantum dots, hạt nano vàng và silica mesoporous). Mặc dù những phát triển đáng kể trong các phương pháp tổng hợp gần đây, hầu hết các hành động của nanocarriers đều liên quan đến một số tác dụng phụ không mong muốn làm giảm hiệu quả sử dụng của chúng trong các ứng dụng sinh học phân tử và y học nano. Điều này làm nổi bật một số vấn đề quan trọng trong thiết kế và kỹ thuật các hệ thống nanocarrier cho các ứng dụng sinh học phân tử, phát sinh từ môi trường phức tạp và các tương tác đa dạng được thiết lập trong các môi trường sinh học cụ thể.",{"EN":4225,"VI":4226},"Smart Nanoparticles for Drug Delivery Application: Development of Versatile Nanocarrier Platforms in Biotechnology and Nanomedicine","Các hạt nano thông minh trong ứng dụng chuyển giao thuốc: Phát triển các nền tảng nanocarrier đa năng trong sinh học phân tử và y học nano",{"VOID":4228},"10.1155\u002F2019\u002F3702518","2024-10-01T09:53:46.053+00:00",[115],[364],"https:\u002F\u002Fwww.hindawi.com\u002Fjournals\u002Fjnm\u002F2019\u002F3702518\u002F",[4234,4287,4309],{"id":4235,"sortIndex":83,"researcher":24,"roles":4236,"affiliations":4237,"properties":4280},"0e276cca-06c8-40d1-9745-28b1cc26ff2d",[],[4238,4248,4259,4270],{"id":4239,"sortIndex":25,"affiliation":4240,"properties":24},"ae9496ba-1a02-46eb-b302-76cb03ef7069",{"id":4241,"createTime":4242,"updateTime":4242,"relativeEntities":4243,"slug":4244,"properties":4245,"entityType":53,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"syncStatus":23,"languages":24,"translateLanguages":24,"viewCount":25},"fab88ab9-51e0-4963-a9e6-ad0868d75726","2024-10-01T09:53:46.088+00:00",[],"Frank-Laboratory-of-Neutron-Physics",{"title":4246},{"EN":4247},"Frank Laboratory of Neutron Physics",{"id":4249,"sortIndex":83,"affiliation":4250,"properties":24},"9d15f5e4-2b70-4ae4-890b-017eb8c98e45",{"id":4251,"createTime":4252,"updateTime":4253,"relativeEntities":4254,"slug":4255,"properties":4256,"entityType":53,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"syncStatus":23,"languages":24,"translateLanguages":24,"viewCount":25},"4bf55c7d-cce3-4b99-b0db-7e4d4c654ecb","2024-01-04T03:57:23.758+00:00","2024-10-01T09:53:46.093+00:00",[],"Frank-Laboratory-of-Neutron-Physics-Joint-Institute-for-Nuclear-Research-Dubna-Moscow-Region-Russia",{"title":4257},{"VI":4258},"Frank Laboratory of Neutron Physics, Joint Institute for Nuclear Research, Dubna, Moscow Region, Russia",{"id":4260,"sortIndex":79,"affiliation":4261,"properties":24},"480c98f9-e548-469c-ad8e-9211a151fec9",{"id":4262,"createTime":4263,"updateTime":4264,"relativeEntities":4265,"slug":4266,"properties":4267,"entityType":53,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"syncStatus":23,"languages":24,"translateLanguages":24,"viewCount":25},"15d57507-cf53-4ae5-870c-eb944a356678","2024-01-09T17:00:00.729+00:00","2024-12-30T01:05:21.081+00:00",[],"Lomonosov-Moscow-State-University-Moscow-Russia",{"title":4268},{"VI":4269},"Lomonosov Moscow State University, Moscow, Russia",{"id":4271,"sortIndex":80,"affiliation":4272,"properties":24},"24f77744-7f7a-4e14-be9c-4560902dc632",{"id":4273,"createTime":4274,"updateTime":4274,"relativeEntities":4275,"slug":4276,"properties":4277,"entityType":53,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"syncStatus":23,"languages":24,"translateLanguages":24,"viewCount":25},"dda3be27-5716-43ce-b9db-61ad6c4c540d","2024-10-01T09:53:46.100+00:00",[],"University-of-Dubna-Dubna-Moscow-Region-Russia",{"title":4278},{"EN":4279},"University of Dubna, Dubna, Moscow Region, Russia",{"openalex":4281,"orcid":4283,"title":4285},{"VOID":4282},"A5058628813",{"VOID":4284},"https:\u002F\u002Forcid.org\u002F0000-0002-3103-8074",{"EN":4286},"Mikhail A. 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cơ chế ổn định, ứng dụng, năng lượng, cơ khí, y sinh",{"VOID":4876},"W1964233017",{"EN":4878,"VI":4879},"\u003Cjats:p>Nanofluids, the fluid suspensions of nanomaterials, have shown many interesting properties, and the distinctive features offer unprecedented potential for many applications. This paper summarizes the recent progress on the study of nanofluids, such as the preparation methods, the evaluation methods for the stability of nanofluids, and the ways to enhance the stability for nanofluids, the stability mechanisms of nanofluids, and presents the broad range of current and future applications in various fields including energy and mechanical and biomedical fields. At last, the paper identifies the opportunities for future research.\u003C\u002Fjats:p>","\u003Cjats:p>Nanofluids, là các hệ chất lỏng có các hạt nano trong huyền phù, đã thể hiện nhiều tính chất thú vị, và các đặc điểm khác biệt mang lại tiềm năng chưa từng có cho nhiều ứng dụng. Bài viết này tổng hợp những tiến bộ gần đây trong nghiên cứu về nanofluids, bao gồm các phương pháp chuẩn bị, các phương pháp đánh giá độ ổn định của nanofluids, và các cách để cải thiện độ ổn định cho nanofluids, các cơ chế ổn định của nanofluids, đồng thời trình bày một loạt các ứng dụng hiện tại và trong tương lai trong các lĩnh vực khác nhau, bao gồm năng lượng cùng các lĩnh vực cơ khí và y sinh. 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