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      Hydrodynamic cavitation-assisted preparation of porous carbon from garlic peels for supercapacitors

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          Highlights

          • HC is used to prepare porous carbon for SCs for the first time.

          • A SSA of 3272 m 2/g with a capacitance of 227 F/g is maximumly achieved.

          • HC/KOH treatment doubles the performance of SCs compared with sole KOH activation.

          • HC is a potential preparation method of porous carbon with high efficiency.

          Abstract

          Hydrodynamic cavitation (HC), which can effectively induce sonochemical effects, is widely considered a promising process intensification technology. In the present study, HC was successfully utilized to intensify the alkali activation of GPs for SCs, for the first time. Five BDCMs were synthesized following the method reported in the literature. For comparison, four more BDCMs with HC-treated, among which a sample was further doped with nitrogen during the HC treatment, were prepared. Then all the samples were compared from microscopical characteristics to electrochemical performance as SCs materials. The morphology study demonstrated that the HC treatment had created many defects and amorphous carbon structures on the GP-based BDCMs, with the highest SSA reaching 3272 m 2/g (1:6-HCGP), which 32 folded that of the Raw carbon sample’s. The HC treatment also intensified the N-doping process. XRD and XPS results manifested that the N content had been increased and consequently changed the electronic structure of the carbon atoms, leading to the increase of specific capacitance (1:6-HCGP+N-based SC, 227 F/g at 10 A/g). The cycle performance proved that the GP-based BDCMs have long-term stability, indicating that the HC-treated BDCMs were good choices for energy storage technologies. Compared with the ultrasound-assisted method, which may have a high energy density, the HC-assisted method enables high production and energy efficiency. This work is a first time attempt towards the industrial application of HC method in energy-related materials synthesis and encourages more in-depth studies in the future.

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          Most cited references70

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          Pseudocapacitance: From Fundamental Understanding to High Power Energy Storage Materials

          There is an urgent global need for electrochemical energy storage that includes materials that can provide simultaneous high power and high energy density. One strategy to achieve this goal is with pseudocapacitive materials that take advantage of reversible surface or near-surface Faradaic reactions to store charge. This allows them to surpass the capacity limitations of electrical double-layer capacitors and the mass transfer limitations of batteries. The past decade has seen tremendous growth in the understanding of pseudocapacitance as well as materials that exhibit this phenomenon. The purpose of this Review is to examine the fundamental development of the concept of pseudocapacitance and how it came to prominence in electrochemical energy storage as well as to describe new classes of materials whose electrochemical energy storage behavior can be described as pseudocapacitive.
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            Value of storage technologies for wind and solar energy

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              Converting biowaste corncob residue into high value added porous carbon for supercapacitor electrodes.

              In this report, corncob residue, the main by-product in the furfural industry, is used as a precursor to prepare porous carbon by a simple and direct thermal treatment: one-step activation without pre-carbonization. As a consequence, the corncob residue derived porous carbon achieves a high surface area of 1210 m(2) g(-1) after ash-removal. The carbon material has the advantages of low cost and low environmental impact, with a superior electrochemical performance compared to those polymer-based synthetic carbons as electrode material for a supercapacitor. The carbon electrode exhibits a high capacitance of 314 F g(-1) in 6M KOH electrolyte. The corresponding sample also shows a superb cycling stability. Almost no capacitance decay was observed after 100,000 cycles. The excellent electrochemical performance is due to the combination of a high specific surface area with a fraction of mesopores and highly stable structure.
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                Author and article information

                Contributors
                Journal
                Ultrason Sonochem
                Ultrason Sonochem
                Ultrasonics Sonochemistry
                Elsevier
                1350-4177
                1873-2828
                13 February 2023
                March 2023
                13 February 2023
                : 94
                : 106333
                Affiliations
                [a ]Key Laboratory of High Efficiency and Clean Mechanical Manufacture, Ministry of Education, School of Mechanical Engineering, Shandong University, Jinan 250061, China
                [b ]National Demonstration Center for Experimental Mechanical Engineering Education, Shandong University, Jinan 250061, China
                [c ]Suzhou Research Institute of Shandong University, Suzhou 215123, China
                [d ]Petroleum and Chemical Engineering, Faculty of Engineering, Universiti Teknologi Brunei, Bandar Seri Begawan BE1410, Brunei Darussalam
                [e ]College of Food Science and Technology, Nanjing Agricultural University, Nanjing 210095, China
                [f ]Department of Mechanical Engineering, BK21 FOUR ERICA-ACE Center, Hanyang University, Ansan 15588, Republic of Korea
                Author notes
                [* ]Corresponding author at: Key Laboratory of High Efficiency and Clean Mechanical Manufacture, Ministry of Education, School of Mechanical Engineering, Shandong University, Jinan 250061, China. xunsun@ 123456sdu.edu.cn
                Article
                S1350-4177(23)00045-7 106333
                10.1016/j.ultsonch.2023.106333
                9975689
                36821934
                1df9d07b-8525-40e3-a8ca-a8a7a632c949
                © 2023 The Author(s)

                This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).

                History
                : 27 December 2022
                : 8 February 2023
                : 12 February 2023
                Categories
                UC and HC intensification

                supercapacitor,hydrodynamic cavitation,process intensification,porous biomass carbon,electricity storage

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