Stereolithographic 3D Printing-Based Hierarchically Cellular Lattices for High-Performance Quasi-Solid Supercapacitor
Abstract 3D printing-based supercapacitors have been extensively explored, yet the rigid rheological requirement for corresponding ink preparation significantly limits the manufacturing of true 3D architecture in achieving superior energy storage. We proposed the stereolithographic technique to fabr...
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doaj-42804f095208436994e6ff4fef31dc792020-11-25T03:12:09ZengSpringerOpenNano-Micro Letters2311-67062150-55512019-06-0111111310.1007/s40820-019-0280-2Stereolithographic 3D Printing-Based Hierarchically Cellular Lattices for High-Performance Quasi-Solid SupercapacitorJianzhe Xue0Libo Gao1Xinkang Hu2Ke Cao3Wenzhao Zhou4Weidong Wang5Yang Lu6School of Telecommunications Engineering, Xidian UniversitySchool of Mechano-Electronic Engineering, Xidian UniversitySchool of Mechano-Electronic Engineering, Xidian UniversityDepartment of Mechanical Engineering, City University of Hong KongCityU-Xidian Joint Laboratory of Micro/Nano-ManufacturingSchool of Mechano-Electronic Engineering, Xidian UniversityCityU-Xidian Joint Laboratory of Micro/Nano-ManufacturingAbstract 3D printing-based supercapacitors have been extensively explored, yet the rigid rheological requirement for corresponding ink preparation significantly limits the manufacturing of true 3D architecture in achieving superior energy storage. We proposed the stereolithographic technique to fabricate the metallic composite lattices with octet-truss arrangement by using electroless plating and engineering the 3D hierarchically porous graphene onto the scaffolds to build the hierarchically cellular lattices in quasi-solid supercapacitor application. The supercapacitor device that is composed of composite lattices span several pore size orders from nm to mm holds promising behavior on the areal capacitance (57.75 mF cm−2), rate capability (70% retention, 2–40 mA cm−2), and long lifespan (96% after 5000 cycles), as well as superior energy density of 0.008 mWh cm−2, which are comparable to the state-of-the-art carbon-based supercapacitor. By synergistically combining this facile stereolithographic 3D printing technology with the hierarchically porous graphene architecture, we provide a novel route of manufacturing energy storage device as well as new insight into building other high-performance functional electronics.http://link.springer.com/article/10.1007/s40820-019-0280-23D printingLatticesGrapheneSupercapacitorPorous structureStereolithography |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Jianzhe Xue Libo Gao Xinkang Hu Ke Cao Wenzhao Zhou Weidong Wang Yang Lu |
spellingShingle |
Jianzhe Xue Libo Gao Xinkang Hu Ke Cao Wenzhao Zhou Weidong Wang Yang Lu Stereolithographic 3D Printing-Based Hierarchically Cellular Lattices for High-Performance Quasi-Solid Supercapacitor Nano-Micro Letters 3D printing Lattices Graphene Supercapacitor Porous structure Stereolithography |
author_facet |
Jianzhe Xue Libo Gao Xinkang Hu Ke Cao Wenzhao Zhou Weidong Wang Yang Lu |
author_sort |
Jianzhe Xue |
title |
Stereolithographic 3D Printing-Based Hierarchically Cellular Lattices for High-Performance Quasi-Solid Supercapacitor |
title_short |
Stereolithographic 3D Printing-Based Hierarchically Cellular Lattices for High-Performance Quasi-Solid Supercapacitor |
title_full |
Stereolithographic 3D Printing-Based Hierarchically Cellular Lattices for High-Performance Quasi-Solid Supercapacitor |
title_fullStr |
Stereolithographic 3D Printing-Based Hierarchically Cellular Lattices for High-Performance Quasi-Solid Supercapacitor |
title_full_unstemmed |
Stereolithographic 3D Printing-Based Hierarchically Cellular Lattices for High-Performance Quasi-Solid Supercapacitor |
title_sort |
stereolithographic 3d printing-based hierarchically cellular lattices for high-performance quasi-solid supercapacitor |
publisher |
SpringerOpen |
series |
Nano-Micro Letters |
issn |
2311-6706 2150-5551 |
publishDate |
2019-06-01 |
description |
Abstract 3D printing-based supercapacitors have been extensively explored, yet the rigid rheological requirement for corresponding ink preparation significantly limits the manufacturing of true 3D architecture in achieving superior energy storage. We proposed the stereolithographic technique to fabricate the metallic composite lattices with octet-truss arrangement by using electroless plating and engineering the 3D hierarchically porous graphene onto the scaffolds to build the hierarchically cellular lattices in quasi-solid supercapacitor application. The supercapacitor device that is composed of composite lattices span several pore size orders from nm to mm holds promising behavior on the areal capacitance (57.75 mF cm−2), rate capability (70% retention, 2–40 mA cm−2), and long lifespan (96% after 5000 cycles), as well as superior energy density of 0.008 mWh cm−2, which are comparable to the state-of-the-art carbon-based supercapacitor. By synergistically combining this facile stereolithographic 3D printing technology with the hierarchically porous graphene architecture, we provide a novel route of manufacturing energy storage device as well as new insight into building other high-performance functional electronics. |
topic |
3D printing Lattices Graphene Supercapacitor Porous structure Stereolithography |
url |
http://link.springer.com/article/10.1007/s40820-019-0280-2 |
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