Rationally Regulating Closed Pore Structures by Pitch Coating to Boost Sodium Storage Performance of Hard Carbon in Low‐voltage Platforms

Author:

Sun Dong1,Zhao Lu1,Sun Peiliang2,Zhao Kai1,Sun Yankun1,Zhang Qi1,Li Zechen1,Ma Zhuang1,Zheng Fangzhi1,Yang Yin1,Lu Changbo1,Peng Chong2,Xu Chunming13,Xiao Zhihua13ORCID,Ma Xinlong1

Affiliation:

1. State Key Laboratory of Heavy Oil China University of Petroleum Beijing 102249 China

2. State Key Laboratory of Fine Chemicals School of Chemical Engineering Dalian University of Technology Dalian Liaoning 116024 China

3. College of Carbon Neutrality Future Technology China University of Petroleum Beijing 102249 China

Abstract

AbstractHard carbon (HC) materials with rich closed pore structures and nano‐scaled soft carbon coating layer have emerged as promising anode in sodium‐ion batteries (SIBs). However, it still remains a tremendous challenge to precisely regulate closed pore structures and soft carbon coating thicknesses for achieving excellent electrochemical performance in SIBs at low‐voltage platforms. Herein, PCHC‐10 with abundant and suitable‐sized closed pore size (0.45 nm) and nano‐scaled soft carbon coating layer has been accurately designed by chemical crosslink reaction between the pre‐oxidized phenolic resin and a small addition of pitch to form ester‐based bond. As anode, PCHC‐10 delivered large reversible capacity of 359.8 mAh g−1 within 0.001–2.5 V, and high capacity of 242.8 mAh g−1 in low voltage platforms (≤0.15 V). Besides, PCHC‐10 anode exhibits 91.4% capacity retention for 100 cycles, and Na3V2(PO4)3//PCHC‐10 full cell has superior rate performance and high energy density of 231.2 Wh kg−1. Furthermore, the detailed electrochemical storage behaviors and theoretical calculations revealed that the HC owning closed pore‐size of 0.45 nm has the strongest Na+ storage abilities in low‐voltage platforms. This work presents a novel insight for constructing HC with suitable‐sized closed pore structures and soft coating layer to boost Na+ storage capability in low‐voltage platforms.

Funder

Science Foundation of China University of Petroleum, Beijing

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Publisher

Wiley

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