Literature DB >> 31241893

Hollow-Carbon-Templated Few-Layered V5S8 Nanosheets Enabling Ultrafast Potassium Storage and Long-Term Cycling.

Li Li1, Wenchao Zhang2, Xing Wang3, Shilin Zhang2, Yajie Liu2, Minhan Li1, Guanjia Zhu1, Yang Zheng2, Qing Zhang2, Tengfei Zhou2,4, Wei Kong Pang2, Wei Luo1, Zaiping Guo2, Jianping Yang1.   

Abstract

Due to the abundant potassium resource on the Earth's crust, researchers now have become interested in exploring high-performance potassium-ion batteries (KIBs). However, the large size of K+ would hinder the diffusion of K ions into electrode materials, thus leading to poor energy/power density and cycling performance during the depotassiation/potassiation process. So, few-layered V5S8 nanosheets wrapping a hollow carbon sphere fabricated via a facile hollow carbon template induced method could reversibly accommodate K storage and maintain the structure stability. Hence, the as-obtained V5S8@C electrode enables rapid and reversible storage of K+ with a high specific capacity of 645 mAh/g at 50 mA/g, a high rate capability, and long cycling stability, with 360 and 190 mAh/g achieved after 500 and 1000 cycles at 500 and 2000 mA/g, respectively. The excellent electrochemical performance is superior to the most existing electrode materials. The DFT calculations reveal that V5S8 nanosheets have high electrical conductivity and low energy barriers for K+ intercalation. Furthermore, the reaction mechanism of the V5S8@C electrode in KIBs is probed via the in operando synchrotron X-ray diffraction technique, and it indicates that the V5S8@C electrode undergoes a sequential intercalation (KV5S8) and conversion reactions (K2S3) reversibly during the potassiation process.

Entities:  

Keywords:  VS nanosheets; anode materials; cycling stability; high power density; potassium-ion batteries

Year:  2019        PMID: 31241893     DOI: 10.1021/acsnano.9b02384

Source DB:  PubMed          Journal:  ACS Nano        ISSN: 1936-0851            Impact factor:   15.881


  1 in total

1.  Construction of Novel Bimetallic Oxyphosphide as Advanced Anode for Potassium Ion Hybrid Capacitor.

Authors:  Shouzhi Wang; Songyang Lv; Guodong Wang; Kun Feng; Shoutian Xie; Guotao Yuan; Kaiqi Nie; Mo Sha; Xuhui Sun; Lei Zhang
Journal:  Adv Sci (Weinh)       Date:  2022-01-18       Impact factor: 16.806

  1 in total

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