Zhou Le, Li Xiang, Chen Hui, Zheng Hangwen, Zhang Tianyu, Ning Jiqiang, Wang Haiyan, Hu Yong
Key Laboratory of the Ministry of Education for Advanced Catalysis Materials, Department of Chemistry, Zhejiang Normal University, Jinhua 321004, China.
College of Chemistry and Materials Engineering, Zhejiang A & F University, Hangzhou 311300, China.
ACS Appl Mater Interfaces. 2024 Oct 9;16(40):53881-53893. doi: 10.1021/acsami.4c11550. Epub 2024 Sep 28.
Rechargeable zinc-iodine (Zn-I) batteries have shown immense potential for grid-scale energy storage applications, but there remain challenges of improving efficiency and cycling stability due to the sluggish iodine reduction reaction (IRR) kinetics and serious shuttle problem of polyiodides. We herein demonstrate an efficient metal-free hydroxyl (-OH)-functionalized carbon catalyst that effectively boosts the performance of Zn-I batteries. It has been found that the obtained electrocatalytic performance is strongly correlated with the surface oxygen chemical environment in the carbon matrix. Both theoretical calculations and experimental measurements have uncovered that the -OH group, rather than carbonyl (-C═O) and carboxyl (-COOH), provides the active electrocatalytic site for IRR, improves the iodine redox kinetics and the electrochemical reversibility, and facilitates I nucleation. As confirmed by a series of and spectroscopy techniques, due to the favorable reaction thermodynamics and the lowered energy barrier for I dissociation, the O-H···I channels can effectively trigger the direct transformation of I/I and avoid the formation of stable polyiodides. As a result, the as-assembled battery of I/oxygen-functionalized carbon cloth (I/OCC-2)//Zn exhibits a high capacity of 2.27 mA h cm at 1 mA cm, outstanding rate capability with 89.0% capacity retention at 20 mA cm, and long-term stability of 10,000 cycles.
可充电锌碘(Zn-I)电池在电网规模储能应用中显示出巨大潜力,但由于碘还原反应(IRR)动力学缓慢和多碘化物严重的穿梭问题,在提高效率和循环稳定性方面仍存在挑战。我们在此展示了一种高效的无金属羟基(-OH)功能化碳催化剂,它能有效提升Zn-I电池的性能。已发现所获得的电催化性能与碳基质中的表面氧化学环境密切相关。理论计算和实验测量均揭示,是-OH基团而非羰基(-C═O)和羧基(-COOH)为IRR提供了活性电催化位点,改善了碘氧化还原动力学和电化学可逆性,并促进了碘的成核。一系列光谱技术证实,由于有利的反应热力学和降低的碘解离能垒,O-H···I通道可有效触发I/I的直接转化,避免形成稳定的多碘化物。因此,组装的I/氧功能化碳布(I/OCC-2)//Zn电池在1 mA cm时表现出2.27 mA h cm的高容量,在20 mA cm时具有89.0%的容量保持率的出色倍率性能,以及10000次循环的长期稳定性。