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      Fast X‐ray Nanotomography with Sub‐10 nm Resolution as a Powerful Imaging Tool for Nanotechnology and Energy Storage Applications

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          Is Open Access

          SciPy 1.0: fundamental algorithms for scientific computing in Python

          SciPy is an open-source scientific computing library for the Python programming language. Since its initial release in 2001, SciPy has become a de facto standard for leveraging scientific algorithms in Python, with over 600 unique code contributors, thousands of dependent packages, over 100,000 dependent repositories and millions of downloads per year. In this work, we provide an overview of the capabilities and development practices of SciPy 1.0 and highlight some recent technical developments.
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            High-rate electrochemical energy storage through Li+ intercalation pseudocapacitance.

            Pseudocapacitance is commonly associated with surface or near-surface reversible redox reactions, as observed with RuO2·xH2O in an acidic electrolyte. However, we recently demonstrated that a pseudocapacitive mechanism occurs when lithium ions are inserted into mesoporous and nanocrystal films of orthorhombic Nb2O5 (T-Nb2O5; refs 1,2). Here, we quantify the kinetics of charge storage in T-Nb2O5: currents that vary inversely with time, charge-storage capacity that is mostly independent of rate, and redox peaks that exhibit small voltage offsets even at high rates. We also define the structural characteristics necessary for this process, termed intercalation pseudocapacitance, which are a crystalline network that offers two-dimensional transport pathways and little structural change on intercalation. The principal benefit realized from intercalation pseudocapacitance is that high levels of charge storage are achieved within short periods of time because there are no limitations from solid-state diffusion. Thick electrodes (up to 40 μm thick) prepared with T-Nb2O5 offer the promise of exploiting intercalation pseudocapacitance to obtain high-rate charge-storage devices.
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              Design and Mechanisms of Asymmetric Supercapacitors

              Ongoing technological advances in diverse fields including portable electronics, transportation, and green energy are often hindered by the insufficient capability of energy-storage devices. By taking advantage of two different electrode materials, asymmetric supercapacitors can extend their operating voltage window beyond the thermodynamic decomposition voltage of electrolytes while enabling a solution to the energy storage limitations of symmetric supercapacitors. This review provides comprehensive knowledge to this field. We first look at the essential energy-storage mechanisms and performance evaluation criteria for asymmetric supercapacitors to understand the wide-ranging research conducted in this area. Then we move to the recent progress made for the design and fabrication of electrode materials and the overall structure of asymmetric supercapacitors in different categories. We also highlight several key scientific challenges and present our perspectives on enhancing the electrochemical performance of future asymmetric supercapacitors.
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                Author and article information

                Contributors
                (View ORCID Profile)
                Journal
                Advanced Materials
                Adv. Mater.
                Wiley
                0935-9648
                1521-4095
                May 2021
                April 19 2021
                May 2021
                : 33
                : 21
                : 2008653
                Affiliations
                [1 ]X‐ray Science Division Advanced Photon Source Argonne National Laboratory Argonne IL USA
                [2 ]Applied Physics Northwestern University Evanston IL 60208 USA
                [3 ]Stanford Synchrotron Radiation Lightsource SLAC National Accelerator Laboratory Menlo Park CA 94025 USA
                [4 ]Institut d'Electronique, de Microélectronique et de Nanotechnologie Université de Lille CNRS Centrale Lille Institut YNCREA‐ISEN Université Polytechnique des Hauts de France UPHF CNRS UMR 8520‐IEMN Lille F‐59000 France
                [5 ]Centre Interuniversitaire de Recherche et d'Ingénierie des Matériaux (CIRIMAT) CNRS UMR 5085 – Université Paul Sabatier Toulouse 31062 France
                [6 ]Réseau sur le Stockage Electrochimique de l'Energie (RS2E) CNRS FR 3459 Amiens Cedex 80039 France
                Article
                10.1002/adma.202008653
                33871108
                a301619b-0c04-4cc7-b13e-a138772585de
                © 2021

                http://onlinelibrary.wiley.com/termsAndConditions#vor

                http://doi.wiley.com/10.1002/tdm_license_1.1

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