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      Wood‐Like Low‐Tortuosity Thick Electrode for Micro‐Redoxcapacitor with Ultrahigh Areal Energy Density and Steady Power Output

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          Abstract

          Conventional MXene‐based thick electrodes with stacked and tortuous microstructures suffer from sluggish charge transport and low‐utilization of active substances, thus a limited boost in areal energy density of the assembled micro‐supercapacitors (MSCs). Herein, the duplication of wood‐like microstructure is realized in MXene/Ag‐nanowires (AgNWs) hybrid aerogel electrode (WL‐M/A‐AE) via directional freeze‐drying technique. Benefitting from the uniform 3D vertically‐aligned microchannels as the highways for ions transport throughout the matrix, the WL‐M/A‐AE with a thickness of up to 2000 µm can achieve a 50‐times higher of Cl diffusion coefficient relative to closely restacked film electrode with the same mass loading of MXene. Furthermore, the evenly interspersed AgNWs serving as percolation network within the electrode matrix can facilitate horizontal electrons transmission between vertically‐aligned loose MXene flakes, while reversibly capture/release Cl ions via phase conversion (Ag⇔AgCl) to raise the charge storage capacity of the WL‐M/A‐AE. Thus, when coupling with Zn anode, the assembled micro‐redoxcapacitor adopting polyacrylamide/ZnCl 2+NH 4Cl hydrogel electrolyte can deliver an areal energy density up to 292.5 µWh cm −2 in a more stable way (a smooth discharge plateau contributing 40.9% of the energy). The demonstrated hybrid thick electrode with wood‐like low‐tortuosity microstructure promises an effective avenue for tackling the performance bottlenecks facing traditional MSCs.

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          Flexible MXene/Carbon Nanotube Composite Paper with High Volumetric Capacitance

          Free-standing and flexible sandwich-like MXene/carbon nanotube (CNT) paper, composed of alternating MXene and CNT layers, is fabricated using a simple filtration method. These sandwich-like papers exhibit high volumetric capacitances, good rate performances, and excellent cycling stability when employed as electrodes in supercapacitors.
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            Thickness-independent capacitance of vertically aligned liquid-crystalline MXenes

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              Perspectives for electrochemical capacitors and related devices

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                Author and article information

                Contributors
                Journal
                Advanced Functional Materials
                Adv Funct Materials
                Wiley
                1616-301X
                1616-3028
                March 2024
                December 03 2023
                March 2024
                : 34
                : 11
                Affiliations
                [1 ] School of Materials Science and Engineering Anhui University Hefei 230601 China
                [2 ] The Institute of Microelectronics Chinese Academy of Sciences Beijing 100029 China
                [3 ] School of Chemistry and Materials Science Huaibei Normal University Huaibei 235000 China
                [4 ] School of Materials Science and Engineering Harbin Institute of Technology Shenzhen 518055 China
                [5 ] Department of Materials Science and Engineering City University of Hong Kong Kowloon Hong Kong 999077 China
                [6 ] Hong Kong Center for Cerebro‐Cardiovascular Health Engineering Hong Kong 999077 China
                Article
                10.1002/adfm.202310775
                4991afad-b34c-4a49-8c09-08e10a573a4f
                © 2024

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