Bidirectional Atomic Iron Catalysis of Sulfur Redox Conversion in High‐Energy Flexible ZnS Battery

Author:

Zhang Weiwei123,Wang Mingli124,Ma Jingkang24,Zhang Hong24,Fu Lin25,Song Bin6,Lu Songtao1,Lu Ke14ORCID

Affiliation:

1. Chongqing Research Institute of HIT Harbin Institute of Technology Harbin Heilongjiang 150001 P. R. China

2. Institutes of Physical Science and Information Technology Key Laboratory of Structure and Functional Regulation of Hybrid Materials of Ministry of Education Anhui University Hefei Anhui 230601 P. R. China

3. School of Chemistry and Chemical Engineering Qufu Normal University Qufu Shandong 273165 P. R. China

4. Hefei National Laboratory for Physical Sciences at the Microscale University of Science and Technology of China Hefei Anhui 230026 P. R. China

5. School of Chemistry and Chemical Engineering Guizhou University Guiyang Guizhou 550025 P. R. China

6. Institute of Functional Nano & Soft Materials (FUNSOM) Soochow University Suzhou Jiangsu 215123 P. R. China

Abstract

AbstractTo achieve the full theoretical potential of high energy ZnS electrochemistry, the incomplete and sluggish conversion during battery discharging and high reactivation energy barrier during battery recharging associated with the sulfur cathodes must be overcome. Herein, the atomically dispersed Fe sites with FeN4 coordination are experimentally and theoretically predicted as bidirectional electrocatalytic hotspots to simultaneously manipulate the complete sulfur conversion and minimize the energy barrier of ZnS decomposition. It is discovered that the Fe sites were favorable for strong sulfur and possible zinc polysulfide intermediate adsorption, and ensure nearly complete sulfur to ZnS conversion during discharge. For the following recharging process, the electrodeposited ZnS can be readily reversible charged back to S without a noticeable activation overpotential around FeN4 moieties comparing to pure carbon matrixes. As expected, the freestanding iron embedded carbon fiber cloth supported sulfur cathode delivers a high specific capacity of 1143 mAh g−1 and a lower voltage hysteresis of 0.61 V. As elaborated by postmortem analysis, the degradation mechanism of ZnS cell is the accumulation of inactive ZnS crystals on the cathode side rather than the Zn metallic depletion. More encouragingly, a flexible solid‐state ZnS battery with a high discharge capacity and stable reversibility is also demonstrated.

Funder

Natural Science Foundation of Anhui Province

China Postdoctoral Science Foundation

Collaborative Innovation Center of Suzhou Nano Science and Technology

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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