Industrial & Engineering Chemistry Research· 2026Q1
Nanowire-Threaded NiZn Layered Double Hydroxide Nanocage Heterostructures for High-Performance Supercapacitors
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- 2026year
Short summary
Constructing Co-carbonate hydroxide (Co-CH) nanowire-threaded NiZn layered double hydroxide (NiZn-LDH) nanocage heterostructures boosts supercapacitor performance, achieving 1805 F g–1 at 1 A g–1 (78% higher than NiZn-LDH alone).
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Key points
- Co-CH nanowires threaded through NiZn-LDH nanocages create a heterostructure with improved electron transport and ion accessibility.
- The Co-CH/NiZn-LDH interfaces exhibit p-n heterojunction characteristics, promoting charge redistribution.
- The heterostructure electrode achieved a specific capacitance of 1805 F g–1 at 1 A g–1, significantly outperforming pristine NiZn-LDH (1015 F g–1).
- Capacitance retention at high current density (30 A g–1) was 76% for the heterostructure, compared to 34% for NiZn-LDH.
- An asymmetric supercapacitor assembled with this material reached an energy density of 68 Wh kg–1 at a power density of 800 W kg–1.
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Abstract
Abstract Layered double hydroxides (LDHs), featuring tunable compositions and unique layered structures, have been widely investigated as electrode materials for supercapacitors. However, their electrochemical performance is often limited by intrinsically low electrical conductivity and insufficient exposure of electrochemically active sites. Herein, Co-carbonate hydroxide (Co-CH) nanowire-threaded NiZn layered double hydroxide (NiZn-LDH) nanocage heterostructures are rationally constructed, in which one-dimensional Co-CH nanowires physically pass through and interconnect multiple hollow NiZn-LDH nanocages. The Co-CH nanowires form a one-dimensional backbone favorable for electron transport, while the electronically coupled Co-CH/NiZn-LDH interfaces promote interfacial charge redistribution and electronic-structure modulation, with complementary analyses supporting their p–n heterojunction characteristics. The hollow nanocages provide internal voids and porous channels that facilitate electrolyte penetration and ion accessibility. As a supercapacitor electrode, Co-CH@NiZn-LDH delivers a specific capacitance of 1805 F g–1 at 1 A g–1, approximately 78% higher than that of pristine NiZn-LDH (1015 F g–1), and exhibits a capacitance retention of 76% at 30 A g–1, compared with 34% for NiZn-LDH. Furthermore, the assembled Co-CH@NiZn-LDH//AC asymmetric supercapacitor achieves an energy density of 68 Wh kg–1 at a power density of 800 W kg–1. This work provides a nanowire-threaded nanocage heterostructure design strategy that integrates one-dimensional backbones, ion-accessible hollow LDH nanocages, and electronically coupled heterointerfaces for high-performance supercapacitor electrodes.
The authors' abstract, as published at the source. Industrial & Engineering Chemistry Research, 2026 · DOI ↗
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Field: Electronic, Optical and Magnetic Materials
Electronic, Optical and Magnetic MaterialsMaterials Science