4
views
0
recommends
+1 Recommend
0 collections
    0
    shares
      • Record: found
      • Abstract: not found
      • Article: not found

      Construction of Lanthanum Vanadate/Functionalized Boron Nitride Nanocomposite: The Electrochemical Sensor for Monitoring of Furazolidone

      Read this article at

      ScienceOpenPublisher
      Bookmark
          There is no author summary for this article yet. Authors can add summaries to their articles on ScienceOpen to make them more accessible to a non-specialist audience.

          Related collections

          Most cited references68

          • Record: found
          • Abstract: found
          • Article: not found

          Functionalized hexagonal boron nitride nanomaterials: emerging properties and applications.

          Functionalization is an important way to breed new properties and applications for a material. This review presents an overview of the progresses in functionalized hexagonal boron nitride (h-BN) nanomaterials. It begins with an introduction of h-BN structural features, physical and chemical properties, followed by an emphasis on the developments of BN functionalization strategies and its emerging properties/applications, and ends with the research perspectives. Different functionalization methods, including physical and chemical routes, are comprehensively described toward fabrication of various BN derivatives, hetero- and porous structures, etc. Novel properties of functionalized BN materials, such as high water solubility, excellent biocompatibility, tunable surface affinities, good processibility, adjustable band gaps, etc., have guaranteed wide applications in biomedical, electronic, composite, environmental and "green" energy-related fields.
            Bookmark
            • Record: found
            • Abstract: found
            • Article: not found

            Recent developments in emerging two-dimensional materials and their applications

            The technological evolution has been progressing for centuries and will possibly increase at a higher rate in the 21st century. The technological evolution has been progressing for centuries and will possibly increase at a higher rate in the 21st century. Currently, in this age of nanotechnology, the discovery of more economical and sustainable novel materials has considerably increased. The abundance of two-dimensional (2D) materials has endowed them with a broad material platform in technical studies and in the expansion of nano- and atomic-level applications. The innovation of graphene has motivated considerable attention to the study of other novel 2D materials, known as modern day “alchemy”, by which scientists are trying to convert most possible periodic table elements into 2D material structures and forms. 2D material devices with high quality and good optical encoder performance have a multitude of industrial applications. However, their stability and large size restrict their applications, but these problems can be overcome by functionalization and substrate-based formation of 2D materials. Therefore, via this review, first, basic attributes of 2D materials are described, and the mechanisms to further enhance their properties are also summarized. Second, the applications of 2D materials are discussed, along with their advantages and disadvantages. Finally, some effective device-fabrication approaches, such as heterostructure approaches, are applied to further enhance the properties of 2D materials; their novel device applications and opportunities are also presented. This updated review may provide new avenues for 2D material synthesis and development of more efficient devices compared to conventional devices in different fields.
              Bookmark
              • Record: found
              • Abstract: found
              • Article: not found

              Binary metal oxide: advanced energy storage materials in supercapacitors

              Binary transition metal oxides (BTMOs) possess higher reversible capacity, better structural stability and electronic conductivity, and have been widely studied to be novel electrode materials for supercapacitors. Binary transition metal oxides (BTMOs) possess higher reversible capacity, better structural stability and electronic conductivity, and have been widely studied to be novel electrode materials for supercapacitors. In this review, we present an extensive description of BTMO materials and the most commonly used synthetic methods. Furthermore, we review several notable BTMOs and their composites in application of supercapacitors. With the increasing attention for energy storage, more and more exciting results about BTMO materials will be reported in the future.
                Bookmark

                Author and article information

                Contributors
                (View ORCID Profile)
                (View ORCID Profile)
                (View ORCID Profile)
                Journal
                ACS Sustainable Chemistry & Engineering
                ACS Sustainable Chem. Eng.
                American Chemical Society (ACS)
                2168-0485
                2168-0485
                February 22 2021
                February 10 2021
                February 22 2021
                : 9
                : 7
                : 2784-2794
                Affiliations
                [1 ]Electroanalysis and Bioelectrochemistry Lab, Department of Chemical Engineering and Biotechnology, National Taipei University of Technology, Taipei 10608, Taiwan
                [2 ]Department of Electro-Optical Engineering, National Taipei University of Technology, Taipei 10608, Taiwan
                [3 ]National Center for Energy Storage Technologies, King Abdulaziz City for Science and Technology (KACST), Riyadh 12354, Saudi Arabia
                [4 ]Research and Development Center for Smart Textile Technology, National Taipei University of Technology, Taipei 106, Taiwan
                [5 ]Department of Materials, Imperial College London, London, SW7 2AZ, United Kingdom
                [6 ]Department of Physics, College of Science, King Faisal University, P. O. Box 400, Hofuf, Al-Ahsa 31982, Saudi Arabia
                [7 ]Department of Basic Sciences, Preparatory Year Deanship, King Faisal University, P. O. Box 400, Hofuf, Al-Ahsa 31982, Saudi Arabia
                Article
                10.1021/acssuschemeng.0c08340
                6078b94e-c0a3-4506-8cdf-15a383f64a8f
                © 2021

                https://doi.org/10.15223/policy-029

                https://doi.org/10.15223/policy-037

                https://doi.org/10.15223/policy-045

                History

                Comments

                Comment on this article