4.6 Article

Propelling polysulfide redox conversion by d-band modulation for high sulfur loading and low temperature lithium-sulfur batteries

期刊

JOURNAL OF MATERIALS CHEMISTRY A
卷 9, 期 34, 页码 18526-18536

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/d1ta04870h

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资金

  1. Collaborative Innovation Center of Suzhou Nano Science Technology
  2. Priority Academic Program Development of Jiangsu Higher Education Institutions (PAPD)
  3. 111 project
  4. National Natural Science Foundation of China [11905154]
  5. Natural Science Foundation of the Jiangsu Higher Education Institutions of China [19KJA550004]
  6. Natural Science Foundation of Jiangsu Province [BK20190814]
  7. Ministry of Science and Technology, Taiwan [109-2113-M-213-002]
  8. Joint International Research Laboratory of Carbon-Based Functional Materials and Devices

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Alloying metallic Ni with Fe can regulate the adsorbability of sulfur species, improving the rate performance and cycling stability of Li-S batteries, while also exhibiting good performance under high sulfur loading and low-temperature conditions.
The sluggish redox conversion of sulfur species, especially under high sulfur loading, low-temperature, and low electrolyte/sulfur (E/S) ratio conditions, aggravates the shuttle effect that severely deteriorates the electrochemical performance of Li-S batteries. Herein, alloying metallic Ni with Fe increases the Ni-Ni(Fe) bond length and reduces the coordination number of Ni, realizing the upshift of the d-band center towards the Fermi level, and thus regulates sulfur species adsorbability to a rational level to accelerate their catalytic conversion. As a consequence, the Li-S batteries with Ni3Fe-modified separators exhibit superior rate performances (800 and 645 mA h g(-1) at 10 and 15C, respectively) and excellent cycling stability (capacity decay of 0.05% per cycle over 800 cycles at 2.0C). Meanwhile, the stable operation of high areal capacity Li-S batteries under a high sulfur loading of 30 mg cm(-2) and a low electrolyte/sulfur ratio of similar to 7 mu L mg(-1) is realized. Besides, benefitting from the enhanced kinetics, the battery can work well at -10 degrees C, which is rarely achieved by conventional Li-S batteries. Our work provides a promising strategy for designing high-activity electrocatalysts for high-performance and low-temperature Li-S batteries.

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