Active cation-integration high-entropy Prussian blue analogues cathodes for efficient Zn storage

被引:0
作者
Jiangyuan Xing
Yongsheng Zhang
Yang Jin
Qianzheng Jin
机构
[1] Zhengzhou University,School of Chemical Engineering
[2] Zhengzhou University,School of Electrical Engineering
关键词
high-entropy materials; Prussian blue analogues; phase transformation; secondary batteries; zinc-ion batteries;
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学科分类号
摘要
Mn-based Prussian blue analogues (Mn-PBAs), featuring a three-dimensional (3D) metal-organic framework and multiple redox couples, have gained wide interests in Zn-ion batteries (ZIBs). However, owing to the Jahn-Teller distortion and disproportionation reaction of Mn3+, these materials suffer from poor electrochemical performances and inferior structural stability. Herein, we prepare a typical high-entropy Prussian blue analogue (HE-PBA) with increased configuration entropy through integrating five transition metal elements of Mn, Co, Ni, Fe and Cu into the nitrogen-coordinated -M- lattice sites. Consequently, the HE-PBA presents enhanced uptake of Zn2+ with 80 mAh·g−1 compared to those medium-entropy PBAs, low-entropy PBAs and conventional PBAs, which can be assigned to “cocktail” effect of multiple transition metal active redox couples. Furthermore, a phase transition process from monoclinic phase to rhombohedral phase occurs in HE-PBA cathode, resulting in a stable structure of MN6 (M = Mn, Co, Fe, Ni, Cu) and ZnN4 co-linked to FeC6 through the cyanide ligands. Additionally, the advantages of entropy-driven stability are also confirmed by the calculated reduction energy and the density of states between HE-PBA and KMn[Fe(CN)6] (KMnHCF). This work not only presents a high-performance HE-PBA cathode in ZIBs, but also introduces a novel concept of high entropy benefiting for designing advanced materials.
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页码:2486 / 2494
页数:8
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共 346 条
[1]  
Cao L S(2021)Fluorinated interphase enables reversible aqueous zinc battery chemistries Nat. Nanotechnol. 16 902-910
[2]  
Li D(2020)Current status and future directions of multivalent metal-ion batteries Nat. Energy 5 646-656
[3]  
Pollard T(2020)Interfacial design of dendrite-free zinc anodes for aqueous zinc-ion batteries Angew. Chem., Int. Ed. 59 13180-13191
[4]  
Deng T(2021)Guest pre-intercalation strategy to boost the electrochemical performance of aqueous zinc-ion battery Cathodes Acta Phys. Chim. Sin. 37 27-49
[5]  
Zhang B(2022)Confining ultrafine SnS nanoparticles in hollow multichannel carbon nanofibers for boosting potassium storage properties Sci. Bull. 67 151-160
[6]  
Yang C Y(2021)A low-strain phosphate cathode for high-rate and ultralong cycle-life potassium-ion batteries Angew. Chem., Int. Ed. 60 25575-25582
[7]  
Chen L(2022)Hierarchical atomic layer deposited V Small 18 2105572-26935
[8]  
Vatamanu J(2022)O Chem. Eng. J. 430 132964-7866
[9]  
Hu E Y(2021) on 3D printed nanocarbon electrodes for high-performance aqueous zinc-ion batteries ACS Appl. Mater. Interfaces 13 26924-516
[10]  
Hourwitz M J(2020)Long cycle life aqueous rechargeable battery Zn/Vanadium hexacyanoferrate with H Chem. Rev. 120 7795-449