3d Hierarchical Oxygen-Deficient Alconi-(Oxy)Hydroxides/N-Doped Carbon Hybrids Enable Efficient Battery- Type Asymmetric Supercapacitor

22 Pages Posted: 25 Jan 2022

See all articles by Renjie Zhang

Renjie Zhang

Qingdao University

Wei Zhang

Qingdao University

Jidong Dong

Harbin Institute of Technology

Lina Ma

Qingdao University

Zaixing Jiang

Harbin Institute of Technology

Yudong Huang

Harbin Institute of Technology

Abstract

Polynary transition-metal layered hydroxides are promising energy materials owing to their unique architecture, impressive theoretical capacities, and adjustable compositions. Regulating the dimensional morphology and active sites/redox states are the keys to electrochemical performance enhancement. Distinguish from the reported mono-metal or binary-metal configurations, a new ternary-metal AlCoNi-LTH is coanchored onto a highly graphitized porous N-doped carbon matrix to develop superior 3D hierarchical microporous functional energy hybrids AlCoNi-LTHs/NAC. The constructed hybrids possess superior structural durability, good electrical conductivity, and rich active sites due to the strong interfacial conjunction and favorable synergistic effect between the doped porous carbon and AlCoNi nanosheets. Consequently, the AlCoNi-LTHs/NAC hybrids demonstrate high conductivity, reasonable specific surface area, and superior specific capacitance, and the assembled hybrid battery-type supercapacitor reveals an ideal energy density of 72.6 Wh kg -1  at a power density of 625 W kg -1 , which is superior to the reported devices. This strategy opens a platform to rationally design polynary transition-metal layered hydroxides and their hybrids for efficient supercapacitors.

Keywords: N-doped carbon, layered tri-metal hydroxides, nanohybrid, hybrid battery-type asymmetric supercapacitor, coupling synergy

Suggested Citation

Zhang, Renjie and Zhang, Wei and Dong, Jidong and Ma, Lina and Jiang, Zaixing and Huang, Yudong, 3d Hierarchical Oxygen-Deficient Alconi-(Oxy)Hydroxides/N-Doped Carbon Hybrids Enable Efficient Battery- Type Asymmetric Supercapacitor. Available at SSRN: https://ssrn.com/abstract=4017632 or http://dx.doi.org/10.2139/ssrn.4017632

Renjie Zhang

Qingdao University ( email )

No. 308 Ning Xia Road
Qingdao, 266071
China

Wei Zhang

Qingdao University ( email )

No. 308 Ning Xia Road
Qingdao, 266071
China

Jidong Dong

Harbin Institute of Technology ( email )

92 West Dazhi Street
Nan Gang District
Harbin, 150001
China

Lina Ma

Qingdao University ( email )

No. 308 Ning Xia Road
Qingdao, 266071
China

Zaixing Jiang (Contact Author)

Harbin Institute of Technology ( email )

92 West Dazhi Street
Nan Gang District
Harbin, 150001
China

Yudong Huang

Harbin Institute of Technology ( email )

92 West Dazhi Street
Nan Gang District
Harbin, 150001
China

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