Catalytic chemistry inspired hollow carbon nanofibers loaded with NiS/Ni as high-performance and safe Li reservoir.

J Colloid Interface Sci

Department of Architecture and Civil Engineering, City University of Hong Kong, Tat Chee Avenue, Kowloon, Hong Kong, China.

Published: June 2024

AI Article Synopsis

  • Transition metal sulfides (TMSs), particularly NiS/Ni@HCNF anodes, show strong potential for improving lithium ion batteries (LIBs) due to their unique structural properties and components.
  • The combination of hollow carbon nanofibers with metallic nickel allows for better buffering of volumetric changes, increased ion transport efficiency, and improved electrical conductivity during battery use.
  • In extensive cycling tests, the NiS/Ni@HCNF anode demonstrated excellent capacity retention and thermal safety, achieving high discharge capacities and low attenuation rates over 1000 cycles at various current densities.

Article Abstract

Transition metal sulfides (TMSs) based anodes hold a very broad application prospect in lithium ion batteries (LIBs). In this work, the catalytic effect of metallic nickel at high temperature was used to generate hollow carbon nanofibers loaded with NiS and Ni (denoted as NiS/Ni@HCNF). The heteroatoms doped carbon fibers buffer the huge volumetric change of NiS during the discharge/charge process, and enhance the ion transport efficiency and electrical conductivity. In addition, the high specific surface area brought by the hollow carbon nanofibers can accelerate the electrolyte penetration and speed up the transport of ions as well as electrons. When used as anode of half cell, this electrode gives 958.5 and 612.9 mAh/g after running 1000 cycles under 1 and 2 A/g, showing the extremely-low attenuation rates of 0.0483 % per cycle and 0.0643 % per cycle, respectively. Impressively, NCM//NiS/Ni@HCNF battery shows the discharge capacity of 187.6 mAh/g at 1st cycle. Regarding the next 100 cycles, the relatively-high discharge capacities (>110 mAh/g) and coulombic efficiency (CE) values (>96 %) are discerned. It is noted that the usage of NiS/Ni@HCNF electrode improves the activation energy for thermal runaway, corroborating the elevated thermal safety of battery.

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Source
http://dx.doi.org/10.1016/j.jcis.2024.02.212DOI Listing

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