TY - JOUR
T1 - Three-Dimensional Hierarchical Core/shell Electrodes Using Highly Conformal TiO2and Co3O4Thin Films for High-Performance Supercapattery Devices
AU - Kavinkumar, T.
AU - Seenivasan, Selvaraj
AU - Sivagurunathan, Amarnath T.
AU - Kwon, Yongchai
AU - Kim, Do Heyoung
N1 - Publisher Copyright:
©
PY - 2021/6/23
Y1 - 2021/6/23
N2 - The rational design and development of novel electrode materials with promising nanostructures is an effective technique to improve their supercapacitive performance. This work presents high-performance core/shell electrodes based on three-dimensional hierarchical nanostructures coated with conformal thin transition-metal oxide layers using atomic layer deposition (ALD). This effective interface engineering creates disorder in the electronic structure and coordination environment at the interface of the heteronanostructure, which provides many more reaction sites and rapid ion diffusion. At 3 A g-1, the positive CuCo2O4/Ni4Mo/MoO2@ALD-Co3O4 electrode introduced here exhibits a specific capacity of 1029.1 C g-1, and the fabricated negative Fe3O4@ALD-TiO2 electrode significantly outperforms conventional carbon-based electrodes, with a maximum specific capacity of 372.6 C g-1. The supercapattery cell assembled from these two interface- and surface-tailored electrodes exhibits a very high energy density of 110.4 W h kg-1 with exceptional capacity retention over 20,000 cycles, demonstrating the immense potential of ALD for the next generation of supercapacitors.
AB - The rational design and development of novel electrode materials with promising nanostructures is an effective technique to improve their supercapacitive performance. This work presents high-performance core/shell electrodes based on three-dimensional hierarchical nanostructures coated with conformal thin transition-metal oxide layers using atomic layer deposition (ALD). This effective interface engineering creates disorder in the electronic structure and coordination environment at the interface of the heteronanostructure, which provides many more reaction sites and rapid ion diffusion. At 3 A g-1, the positive CuCo2O4/Ni4Mo/MoO2@ALD-Co3O4 electrode introduced here exhibits a specific capacity of 1029.1 C g-1, and the fabricated negative Fe3O4@ALD-TiO2 electrode significantly outperforms conventional carbon-based electrodes, with a maximum specific capacity of 372.6 C g-1. The supercapattery cell assembled from these two interface- and surface-tailored electrodes exhibits a very high energy density of 110.4 W h kg-1 with exceptional capacity retention over 20,000 cycles, demonstrating the immense potential of ALD for the next generation of supercapacitors.
KW - atomic layer deposition
KW - energy density
KW - heteronanostructure
KW - interface engineering
KW - supercapattery
UR - http://www.scopus.com/inward/record.url?scp=85108667200&partnerID=8YFLogxK
U2 - 10.1021/acsami.1c04572
DO - 10.1021/acsami.1c04572
M3 - Article
C2 - 34107677
AN - SCOPUS:85108667200
SN - 1944-8244
VL - 13
SP - 29058
EP - 29069
JO - ACS Applied Materials and Interfaces
JF - ACS Applied Materials and Interfaces
IS - 24
ER -