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Heng Y, Xie T, Wang X, Chen D, Wen J, Chen X, Hu D, Wang N, Wu YA. Raw cellulose/polyvinyl alcohol blending separators prepared by phase inversion for high-performance supercapacitors. NANOTECHNOLOGY 2021; 32:095403. [PMID: 33203815 DOI: 10.1088/1361-6528/abcb62] [Citation(s) in RCA: 3] [Impact Index Per Article: 0.8] [Reference Citation Analysis] [Abstract] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 06/11/2023]
Abstract
The development of a biodegradable cellulose-based separator with excellent performance has been of great research significance and application potential for the green development of supercapacitors. Herein, the regenerated porous cellulose/Polyvinyl alcohol films (CP-10, CP-15, CP-20, CP-25) with different mass ratio were successfully fabricated by a simple blending and phase inversion process. Their electrochemical properties as separators in assembled supercapacitor were evaluated. Fourier transform infrared spectroscopy and x-ray diffraction analysis indicate that intermolecular and intramolecular hydrogen bonding existed between cellulose and polyvinyl alcohol of the CP films. Compared with other CP films, the CP-20 film shows higher mechanical strength (28.02 MPa), better wettability (79.06°), higher porosity (59.69%) and electrolyte uptake (281.26 wt%). These properties of CP-20 are expected to show better electrochemical performance as separator. Indeed, the electrochemical tests, including electrochemical impedance spectroscopy, cyclic voltammetry, galvanostatic charge discharge, demonstrate that the SC-20 capacitor (with CP-20 as separator) shows the lowest equivalent series resistance of 0.57 Ω, the highest areal capacitance of 1.98 F cm-2 at 10 mV s-1, specific capacitance of 134.41 F g-1 and charge-discharge efficiency of 98.62% at 1 A g-1 among the four capacitors with CP films as separators. Comparing the assembled SC-40 and SC-30 with two commercial separators (TF4040 and MPF30AC) and SC-PVA with Polyvinyl alcohol (PVA) separator, the CV and GCD curves of SC-20 maintain the quasi rectangular and symmetrical triangular profiles respectively at different scan rates in potential window of 0-1 V. SC-20 exhibits the highest value of 28.24 Wh kg-1 at 0.5 A g-1 with a power density of 0.26 kW kg-1, and 13.41 Wh kg-1 at 10 A g-1 with a power density of 6.04 kW kg-1. SC-20 also shows the lowest voltage drop and the highest areal and specific capacitance. Moreover, SC-20 maintains the highest value of 86.81% after 4000 cycles compared to 21.18% of SC-40, 75.07% of SC-30, and 6.66% of SC-PVA, showing a superior rate capability of a supercapacitor. These results indicate that CP films can be served as promising separators for supercapacitors.
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Affiliation(s)
- Yingqi Heng
- Wood Industry Research Institute, School of Resources, Environment and Materials, Guangxi University, Nanning 530004, People's Republic of China
| | - Tianqi Xie
- Wood Industry Research Institute, School of Resources, Environment and Materials, Guangxi University, Nanning 530004, People's Republic of China
| | - Xiyang Wang
- Department of Mechanical and Mechatronics Engineering, University of Waterloo, Waterloo, Ontario, N2L 3G1, Canada
- Waterloo Institute for Nanotechnology, University of Waterloo, Waterloo, Ontario, N2L 3G1, Canada
| | - Ding Chen
- College of Chemistry and Chemical Engineering, Guangxi University, Nanning, 530004, Guangxi, People's Republic of China
| | - Jiahao Wen
- Guangxi Institute Fullerene Technology (GIFT), Key Laboratory of New Processing Technology for Nonferrous Metals and Materials-Ministry of Education, School of Resources, Environment and Materials, Guangxi University, Nanning 530004, People's Republic of China
| | - Xiyong Chen
- Guangxi Institute Fullerene Technology (GIFT), Key Laboratory of New Processing Technology for Nonferrous Metals and Materials-Ministry of Education, School of Resources, Environment and Materials, Guangxi University, Nanning 530004, People's Republic of China
| | - Dongying Hu
- Wood Industry Research Institute, School of Resources, Environment and Materials, Guangxi University, Nanning 530004, People's Republic of China
| | - Nannan Wang
- Guangxi Institute Fullerene Technology (GIFT), Key Laboratory of New Processing Technology for Nonferrous Metals and Materials-Ministry of Education, School of Resources, Environment and Materials, Guangxi University, Nanning 530004, People's Republic of China
| | - Yimin A Wu
- Department of Mechanical and Mechatronics Engineering, University of Waterloo, Waterloo, Ontario, N2L 3G1, Canada
- Waterloo Institute for Nanotechnology, University of Waterloo, Waterloo, Ontario, N2L 3G1, Canada
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Waqas M, Ali S, Feng C, Chen D, Han J, He W. Recent Development in Separators for High-Temperature Lithium-Ion Batteries. SMALL (WEINHEIM AN DER BERGSTRASSE, GERMANY) 2019; 15:e1901689. [PMID: 31116914 DOI: 10.1002/smll.201901689] [Citation(s) in RCA: 56] [Impact Index Per Article: 9.3] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Subscribe] [Scholar Register] [Received: 04/02/2019] [Revised: 04/30/2019] [Indexed: 06/09/2023]
Abstract
Lithium-ion batteries (LIBs) are promising energy storage devices for integrating renewable resources and high power applications, owing to their high energy density, light weight, high flexibility, slow self-discharge rate, high rate charging capability, and long battery life. LIBs work efficiently at ambient temperatures, however, at high-temperatures, they cause serious issues due to the thermal fluctuation inside batteries during operation. The separator is a key component of batteries and is crucial for the sustainability of LIBs at high-temperatures. The high thermal stability with minimum thermal shrinkage and robust mechanical strength are the prime requirements along with high porosity, ionic conductivity, and electrolyte uptake for highly efficient high-temperature LIBs. This Review deals with the recent studies and developments in separator technologies for high-temperature LIBs with respect to their structural layered formation. The recent progress in monolayer and multilayer separators along with the developed preparation methodologies is discussed in detail. Future challenges and directions toward the advancement in separator technology are also discussed for achieving remarkable performance of separators in a high-temperature environment.
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Affiliation(s)
- Muhammad Waqas
- National Key Laboratory of Science and Technology on Advanced Composites in Special Environments, and Center for Composite Materials and Structures, Harbin Institute of Technology, Harbin, 150080, P. R. China
- School of Physics, University of Electronic Science and Technology of China, Chengdu, Sichuan, 611731, P. R. China
- Department of Electrical Engineering, Sukkur IBA University, Sukkur, 65200, Pakistan
| | - Shamshad Ali
- National Key Laboratory of Science and Technology on Advanced Composites in Special Environments, and Center for Composite Materials and Structures, Harbin Institute of Technology, Harbin, 150080, P. R. China
- School of Physics, University of Electronic Science and Technology of China, Chengdu, Sichuan, 611731, P. R. China
| | - Chao Feng
- School of Physics, University of Electronic Science and Technology of China, Chengdu, Sichuan, 611731, P. R. China
| | - Dongjiang Chen
- School of Physics, University of Electronic Science and Technology of China, Chengdu, Sichuan, 611731, P. R. China
| | - Jiecai Han
- National Key Laboratory of Science and Technology on Advanced Composites in Special Environments, and Center for Composite Materials and Structures, Harbin Institute of Technology, Harbin, 150080, P. R. China
| | - Weidong He
- National Key Laboratory of Science and Technology on Advanced Composites in Special Environments, and Center for Composite Materials and Structures, Harbin Institute of Technology, Harbin, 150080, P. R. China
- School of Physics, University of Electronic Science and Technology of China, Chengdu, Sichuan, 611731, P. R. China
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Zhang L, Feng G, Li X, Cui S, Ying S, Feng X, Mi L, Chen W. Synergism of surface group transfer and in-situ growth of silica-aerogel induced high-performance modified polyacrylonitrile separator for lithium/sodium-ion batteries. J Memb Sci 2019. [DOI: 10.1016/j.memsci.2019.02.002] [Citation(s) in RCA: 35] [Impact Index Per Article: 5.8] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/22/2022]
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Chen S, Zhang Z, Li L, Yuan W. Covalently‐Bonded Poly(vinyl alcohol)‐Silica Composite Nanofiber Separator with Enhanced Wettability and Thermal Stability for Lithium‐Ion Battery. ChemistrySelect 2018. [DOI: 10.1002/slct.201802794] [Citation(s) in RCA: 11] [Impact Index Per Article: 1.6] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/22/2022]
Affiliation(s)
- Shilin Chen
- School of Chemistry and Chemical EngineeringSouth China University of Technology Guangzhou 510640 P R China
| | - Zhixiong Zhang
- School of Chemistry and Chemical EngineeringSouth China University of Technology Guangzhou 510640 P R China
| | - Li Li
- College of Environmental Science and EngineeringSouth China University of Technology Guangzhou 510006 P R China
| | - Wenhui Yuan
- School of Chemistry and Chemical EngineeringSouth China University of Technology Guangzhou 510640 P R China
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Recent Advances in Poly(vinylidene fluoride) and Its Copolymers for Lithium-Ion Battery Separators. MEMBRANES 2018; 8:membranes8030045. [PMID: 30029489 PMCID: PMC6161240 DOI: 10.3390/membranes8030045] [Citation(s) in RCA: 63] [Impact Index Per Article: 9.0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Download PDF] [Figures] [Subscribe] [Scholar Register] [Received: 06/29/2018] [Revised: 07/11/2018] [Accepted: 07/12/2018] [Indexed: 11/30/2022]
Abstract
The separator membrane is an essential component of lithium-ion batteries, separating the anode and cathode, and controlling the number and mobility of the lithium ions. Among the polymer matrices most commonly investigated for battery separators are poly(vinylidene fluoride) (PVDF) and its copolymers poly(vinylidene fluoride-co-trifluoroethylene) (PVDF-TrFE), poly(vinylidene fluoride-co-hexafluoropropylene) (PVDF-HFP), and poly(vinylidene fluoride-cochlorotrifluoroethylene) (PVDF-CTFE), due to their excellent properties such as high polarity and the possibility of controlling the porosity of the materials through binary and ternary polymer/solvent systems, among others. This review presents the recent advances on battery separators based on PVDF and its copolymers for lithium-ion batteries. It is divided into the following sections: single polymer and co-polymers, surface modification, composites, and polymer blends. Further, a critical comparison between those membranes and other separator membranes is presented, as well as the future trends on this area.
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Chen W, Zhang L, Liu C, Feng X, Zhang J, Guan L, Mi L, Cui S. Electrospun Flexible Cellulose Acetate-Based Separators for Sodium-Ion Batteries with Ultralong Cycle Stability and Excellent Wettability: The Role of Interface Chemical Groups. ACS APPLIED MATERIALS & INTERFACES 2018; 10:23883-23890. [PMID: 29920205 DOI: 10.1021/acsami.8b06706] [Citation(s) in RCA: 34] [Impact Index Per Article: 4.9] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 05/16/2023]
Abstract
Na-ion batteries are one of the best technologies for large-scale applications depending on almost infinite and widespread sodium resources. However, the state-of-the-art separators cannot meet the engineering needs of large-scale sodium-ion batteries to match the intensively investigated electrode materials. Here, a kind of flexible modified cellulose acetate separator (MCA) for sodium-ion batteries was synthesized via the electrospinning process and subsequently optimizing the interface chemical groups by changing acetyl to hydroxyl partly. Upon the rational design, the flexible MCA separator exhibits high chemical stability and excellent wettability (contact angles nearly 0°) in electrolytes (EC/PC, EC/DMC, diglyme, and triglyme). Moreover, the flexible MCA separator shows high onset temperature of degradation (over 250 °C) and excellent thermal stability (no shrinkage at 220 °C). Electrochemical measurements, importantly, show that the Na-ion batteries with flexible MCA separator exhibit ultralong cycle life (93.78%, 10 000 cycles) and high rate capacity (100.1 mAh g-1 at 10 C) in the Na/Na3V2(PO4)3 (NVP) half cell (2.5-4.0 V) and good cycle performance (98.59%, 100 cycles) in the Na/SnS2 half cell (0.01-3 V), respectively. Moreover, the full cell (SnS2/NVP) with flexible MCA separator displays the capacity of 98 mAh g-1 and almost no reduction after 40 cycles at 0.118 A g-1. Thus, this work provides a kind of flexible modified cellulose acetate separator for Na-ion batteries with great potential for practical large-scale applications.
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Affiliation(s)
- Weihua Chen
- College of Chemistry and Molecular Engineering , Zhengzhou University , Zhengzhou 450001 , PR China
| | - Lupeng Zhang
- College of Chemistry and Molecular Engineering , Zhengzhou University , Zhengzhou 450001 , PR China
| | - Chuntai Liu
- National Engineering and Research Center for Adv. Polymer Processing Technology , Zhengzhou University , Zhengzhou , 450001 , PR China
| | - Xiangming Feng
- College of Chemistry and Molecular Engineering , Zhengzhou University , Zhengzhou 450001 , PR China
| | - Jianmin Zhang
- College of Chemistry and Molecular Engineering , Zhengzhou University , Zhengzhou 450001 , PR China
| | - Linquan Guan
- College of Chemistry and Molecular Engineering , Zhengzhou University , Zhengzhou 450001 , PR China
| | - Liwei Mi
- Center for Advanced Materials Research , Zhongyuan University of Technology , Zhengzhou 450007 , PR China
| | - Shizhong Cui
- Center for Advanced Materials Research , Zhongyuan University of Technology , Zhengzhou 450007 , PR China
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Li J, Zhong Q, Yao Y, Bi S, Zhou T, Guo X, Wu M, Feng T, Xiang R. Electrochemical performance and thermal stability of the electrospun PTFE nanofiber separator for lithium-ion batteries. J Appl Polym Sci 2018. [DOI: 10.1002/app.46508] [Citation(s) in RCA: 42] [Impact Index Per Article: 6.0] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/09/2022]
Affiliation(s)
- Jingde Li
- Textile Institute; Sichuan University; Chengdu Sichuan 610065 People's Republic of China
| | - Qin Zhong
- Textile Institute; Sichuan University; Chengdu Sichuan 610065 People's Republic of China
| | - Yongyi Yao
- Textile Institute; Sichuan University; Chengdu Sichuan 610065 People's Republic of China
| | - Songhu Bi
- Institute of Chemical Industry; Sichuan University; Chengdu Sichuan 610064 People's Republic of China
| | - Tao Zhou
- Textile Institute; Sichuan University; Chengdu Sichuan 610065 People's Republic of China
| | - XiaoMing Guo
- Textile Institute; Sichuan University; Chengdu Sichuan 610065 People's Republic of China
| | - Mengqiang Wu
- Center for Advanced Electric Energy Technologies (CAEET), School of Energy Science and Engineering; University of Electronic Science and Technology of China; Chengdu 611731 China
| | - Tingting Feng
- Center for Advanced Electric Energy Technologies (CAEET), School of Energy Science and Engineering; University of Electronic Science and Technology of China; Chengdu 611731 China
| | - Ruili Xiang
- Analytical and Testing Center; Sichuan University; Chengdu Sichuan 610064 People's Republic of China
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