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Boosting NH <sub>4</sub> <sup>+</sup> adsorption of Ti <sub>3</sub> C <sub>2</sub> T <sub> <i>x</i> </sub> @S‐V <sub>2</sub> O <sub>5</sub> @CNF nanofiber by S doping and heterostructure construction: local charge regulation

Haiyang WangTechnological Institute of Materials &amp; Energy Science (TIMES) Key Laboratory of Liquid Crystal Polymers Based Flexible Display Technology in National Petroleum and Chemical Industry Xi’an Key Laboratory of Advanced Photo‐Electronics Materials and Energy Conversion Device School of Electronic Information Xijing University 710123 Xi’an ChinaHao LuoTechnological Institute of Materials &amp; Energy Science (TIMES) Key Laboratory of Liquid Crystal Polymers Based Flexible Display Technology in National Petroleum and Chemical Industry Xi’an Key Laboratory of Advanced Photo‐Electronics Materials and Energy Conversion Device School of Electronic Information Xijing University 710123 Xi’an ChinaMiaomiao LiangSchool of Materials Science and Engineering Key Laboratory of Functional Textile Material and Product Ministry of Education Xi’an Key Laboratory of Textile Composites Xi’an Polytechnic University 710048 Xi’an ChinaHao MaTechnological Institute of Materials &amp; Energy Science (TIMES) Key Laboratory of Liquid Crystal Polymers Based Flexible Display Technology in National Petroleum and Chemical Industry Xi’an Key Laboratory of Advanced Photo‐Electronics Materials and Energy Conversion Device School of Electronic Information Xijing University 710123 Xi’an ChinaDihao LvTechnological Institute of Materials &amp; Energy Science (TIMES) Key Laboratory of Liquid Crystal Polymers Based Flexible Display Technology in National Petroleum and Chemical Industry Xi’an Key Laboratory of Advanced Photo‐Electronics Materials and Energy Conversion Device School of Electronic Information Xijing University 710123 Xi’an ChinaFan QuTechnological Institute of Materials &amp; Energy Science (TIMES) Key Laboratory of Liquid Crystal Polymers Based Flexible Display Technology in National Petroleum and Chemical Industry Xi’an Key Laboratory of Advanced Photo‐Electronics Materials and Energy Conversion Device School of Electronic Information Xijing University 710123 Xi’an ChinaYing YinShenzhen Automotive Research Institute Beijing Institute of Technology 518118 Shenzhen ChinaYuan ZhouHubei Key Laboratory of Energy Storage and Power Battery Hubei Key Laboratory of Automotive Power Train and Electronic Control School of Electrical and Information Engineering Hubei University of Automotive Technology 442002 Shiyan ChinaXudong ZhangNetwork Information Center Xi’an Jiaotong University 710049 Xi’an ChinaHaichao ZhaoNational Engineering Research Center for Remanufacturing Army Academy of Armored Forces 100072 Beijing ChinaZongcheng MiaoSchool of Artificial Intelligence Optics and Electronics (iOPEN) Northwestern Polytechnical University 710072 Xi’an China
2025en
ABI

Аннотация

Abstract Aqueous ammonium ion battery (AAIB) is considered as a promising candidate for next‐generation energy storage device, while the limited performance of cathode material retards its further development. Seeking novel materials and reveal the underlying energy storage reinforcement mechanism is necessary for promoting future commercial application of AAIB. Herein, a novel electrospun Ti 3 C 2 T x @S‐V 2 O 5 @CNF nanofiber is constructed by sulfur doping and Ti 3 C 2 T x introduction strategy to exert the synergetic effect on NH 4 + storage capacity. Density functional theory calculations indicate that the induction of Ti 3 C 2 T x can redistribute the internal charges of material, induce the downshift of the d‐band center of V atoms and p‐band center of S atoms to the Fermi level, thus the adsorption energy of NH 4 + is optimized. Electrochemical results show that the Ti 3 C 2 T x @S‐V 2 O 5 @CNF electrode displays high capacity of 576.2 mAh g −1 at 0.5 A g −1 , long cycle life and superior rate performance. The assembled Ti 3 C 2 T x @S‐V 2 O 5 @CNF//PTCDI full cell also exhibits excellent electrochemical behavior including large specific capacity of 181 mAh g −1 at 0.5 A g −1 , cycling stability of 10,000 cycles at 5 A g −1 with no capacity decay, and good rate performance. This work gives insight into the NH 4 + storage capacity control by rational local charge regulation through S doping and heterostructure construction to facilitate electron transfer for AAIBs and other energy storage system.

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