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Cited 6 time in webofscience Cited 5 time in scopus
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Structural reconstruction of N/S-assisted carbon polyhedral matrix endowed with bimetallic phosphide heterostructures for energy storageopen access

Authors
Thondaiman, PugalenthiyarRaj, Chellan JustinManikandan, RamuCristobal, VozKaya, CengizKim, Byung Chul
Issue Date
Dec-2023
Publisher
Elsevier B.V.
Keywords
Asymmetric supercapacitor; Bimetallic phosphide; Carbon matrix; N/S doped carbon; ZIF-67
Citation
Sustainable Materials and Technologies, v.38, pp 1 - 12
Pages
12
Indexed
SCIE
SCOPUS
Journal Title
Sustainable Materials and Technologies
Volume
38
Start Page
1
End Page
12
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/26350
DOI
10.1016/j.susmat.2023.e00742
ISSN
2214-9929
2214-9937
Abstract
The synergism of heteroatom-doped carbon polyhedral with mixed-metal networks offers a myriad of electroactive sites that aid in excellent capacitive performance. Herein, a simple precipitation method was implemented to synthesis thiourea functionalized bimetallic ZIF-67 polyhedral as a sacrificial template, facilitating the construction of a superior N/S‑carbon matrix with a Co-Ni-P (CNS/CNP) architecture through various thermal phosphorization processes. The CNS/CNP-2 revealed remarkable attributes after phosphorization at 500 °C, including a maximum specific capacitance of 588 F g−1 at a specific current of 1 A g−1 in 3 M KOH electrolyte. This outstanding performance arises from the synergy of N/S carbon matrix, which significantly increases electroactive sites and structural stability, and Co-Ni-P network, which enhances both redox-active site density and conductivity, facilitating rapid ion diffusion. Furthermore, an asymmetrical supercapacitor was integrated as CNS/CNP-2//AC and revealed a maximum specific energy and power of 30.3 W h kg−1 and 12,489 W kg−1, respectively, with capacitance retention of 90% even for 10,000 cycles. The ASC device was designed as a coin-cell to facilitate real-time applications. The study demonstrates that a synergistic effect between Co–Ni metal ions and a heteroatom matrix can yield an electrode material with a high specific capacity for energy storage devices. © 2023
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