Laser-sculptured ultrathin transition metal carbide layers for energy storage and energy harvesting applications

© 2019, The Author(s). Ultrathin transition metal carbides with high capacity, high surface area, and high conductivity are a promising family of materials for applications from energy storage to catalysis. However, large-scale, cost-effective, and precursor-free methods to prepare ultrathin carbide...

Full description

Bibliographic Details
Main Authors: Zang, Xining, Jian, Cuiying, Zhu, Taishan, Fan, Zheng, Wang, Wanlin, Wei, Minsong, Li, Buxuan, Follmar Diaz, Mateo, Ashby, Paul, Lu, Zhengmao, Chu, Yao, Wang, Zizhao, Ding, Xinrui, Xie, Yingxi, Chen, Juhong, Hohman, J Nathan, Sanghadasa, Mohan, Grossman, Jeffrey C, Lin, Liwei
Other Authors: Massachusetts Institute of Technology. Department of Materials Science and Engineering
Format: Article
Language:English
Published: Springer Science and Business Media LLC 2021
Online Access:https://hdl.handle.net/1721.1/134797
_version_ 1826194048931594240
author Zang, Xining
Jian, Cuiying
Zhu, Taishan
Fan, Zheng
Wang, Wanlin
Wei, Minsong
Li, Buxuan
Follmar Diaz, Mateo
Ashby, Paul
Lu, Zhengmao
Chu, Yao
Wang, Zizhao
Ding, Xinrui
Xie, Yingxi
Chen, Juhong
Hohman, J Nathan
Sanghadasa, Mohan
Grossman, Jeffrey C
Lin, Liwei
author2 Massachusetts Institute of Technology. Department of Materials Science and Engineering
author_facet Massachusetts Institute of Technology. Department of Materials Science and Engineering
Zang, Xining
Jian, Cuiying
Zhu, Taishan
Fan, Zheng
Wang, Wanlin
Wei, Minsong
Li, Buxuan
Follmar Diaz, Mateo
Ashby, Paul
Lu, Zhengmao
Chu, Yao
Wang, Zizhao
Ding, Xinrui
Xie, Yingxi
Chen, Juhong
Hohman, J Nathan
Sanghadasa, Mohan
Grossman, Jeffrey C
Lin, Liwei
author_sort Zang, Xining
collection MIT
description © 2019, The Author(s). Ultrathin transition metal carbides with high capacity, high surface area, and high conductivity are a promising family of materials for applications from energy storage to catalysis. However, large-scale, cost-effective, and precursor-free methods to prepare ultrathin carbides are lacking. Here, we demonstrate a direct pattern method to manufacture ultrathin carbides (MoCx, WCx, and CoCx) on versatile substrates using a CO2 laser. The laser-sculptured polycrystalline carbides (macroporous, ~10–20 nm wall thickness, ~10 nm crystallinity) show high energy storage capability, hierarchical porous structure, and higher thermal resilience than MXenes and other laser-ablated carbon materials. A flexible supercapacitor made of MoCx demonstrates a wide temperature range (−50 to 300 °C). Furthermore, the sculptured microstructures endow the carbide network with enhanced visible light absorption, providing high solar energy harvesting efficiency (~72 %) for steam generation. The laser-based, scalable, resilient, and low-cost manufacturing process presents an approach for construction of carbides and their subsequent applications.
first_indexed 2024-09-23T09:49:41Z
format Article
id mit-1721.1/134797
institution Massachusetts Institute of Technology
language English
last_indexed 2024-09-23T09:49:41Z
publishDate 2021
publisher Springer Science and Business Media LLC
record_format dspace
spelling mit-1721.1/1347972023-09-19T20:20:51Z Laser-sculptured ultrathin transition metal carbide layers for energy storage and energy harvesting applications Zang, Xining Jian, Cuiying Zhu, Taishan Fan, Zheng Wang, Wanlin Wei, Minsong Li, Buxuan Follmar Diaz, Mateo Ashby, Paul Lu, Zhengmao Chu, Yao Wang, Zizhao Ding, Xinrui Xie, Yingxi Chen, Juhong Hohman, J Nathan Sanghadasa, Mohan Grossman, Jeffrey C Lin, Liwei Massachusetts Institute of Technology. Department of Materials Science and Engineering © 2019, The Author(s). Ultrathin transition metal carbides with high capacity, high surface area, and high conductivity are a promising family of materials for applications from energy storage to catalysis. However, large-scale, cost-effective, and precursor-free methods to prepare ultrathin carbides are lacking. Here, we demonstrate a direct pattern method to manufacture ultrathin carbides (MoCx, WCx, and CoCx) on versatile substrates using a CO2 laser. The laser-sculptured polycrystalline carbides (macroporous, ~10–20 nm wall thickness, ~10 nm crystallinity) show high energy storage capability, hierarchical porous structure, and higher thermal resilience than MXenes and other laser-ablated carbon materials. A flexible supercapacitor made of MoCx demonstrates a wide temperature range (−50 to 300 °C). Furthermore, the sculptured microstructures endow the carbide network with enhanced visible light absorption, providing high solar energy harvesting efficiency (~72 %) for steam generation. The laser-based, scalable, resilient, and low-cost manufacturing process presents an approach for construction of carbides and their subsequent applications. 2021-10-27T20:09:13Z 2021-10-27T20:09:13Z 2019 2019-09-19T14:40:39Z Article http://purl.org/eprint/type/JournalArticle https://hdl.handle.net/1721.1/134797 en 10.1038/s41467-019-10999-z Nature Communications Creative Commons Attribution 4.0 International license https://creativecommons.org/licenses/by/4.0/ application/pdf Springer Science and Business Media LLC Nature
spellingShingle Zang, Xining
Jian, Cuiying
Zhu, Taishan
Fan, Zheng
Wang, Wanlin
Wei, Minsong
Li, Buxuan
Follmar Diaz, Mateo
Ashby, Paul
Lu, Zhengmao
Chu, Yao
Wang, Zizhao
Ding, Xinrui
Xie, Yingxi
Chen, Juhong
Hohman, J Nathan
Sanghadasa, Mohan
Grossman, Jeffrey C
Lin, Liwei
Laser-sculptured ultrathin transition metal carbide layers for energy storage and energy harvesting applications
title Laser-sculptured ultrathin transition metal carbide layers for energy storage and energy harvesting applications
title_full Laser-sculptured ultrathin transition metal carbide layers for energy storage and energy harvesting applications
title_fullStr Laser-sculptured ultrathin transition metal carbide layers for energy storage and energy harvesting applications
title_full_unstemmed Laser-sculptured ultrathin transition metal carbide layers for energy storage and energy harvesting applications
title_short Laser-sculptured ultrathin transition metal carbide layers for energy storage and energy harvesting applications
title_sort laser sculptured ultrathin transition metal carbide layers for energy storage and energy harvesting applications
url https://hdl.handle.net/1721.1/134797
work_keys_str_mv AT zangxining lasersculpturedultrathintransitionmetalcarbidelayersforenergystorageandenergyharvestingapplications
AT jiancuiying lasersculpturedultrathintransitionmetalcarbidelayersforenergystorageandenergyharvestingapplications
AT zhutaishan lasersculpturedultrathintransitionmetalcarbidelayersforenergystorageandenergyharvestingapplications
AT fanzheng lasersculpturedultrathintransitionmetalcarbidelayersforenergystorageandenergyharvestingapplications
AT wangwanlin lasersculpturedultrathintransitionmetalcarbidelayersforenergystorageandenergyharvestingapplications
AT weiminsong lasersculpturedultrathintransitionmetalcarbidelayersforenergystorageandenergyharvestingapplications
AT libuxuan lasersculpturedultrathintransitionmetalcarbidelayersforenergystorageandenergyharvestingapplications
AT follmardiazmateo lasersculpturedultrathintransitionmetalcarbidelayersforenergystorageandenergyharvestingapplications
AT ashbypaul lasersculpturedultrathintransitionmetalcarbidelayersforenergystorageandenergyharvestingapplications
AT luzhengmao lasersculpturedultrathintransitionmetalcarbidelayersforenergystorageandenergyharvestingapplications
AT chuyao lasersculpturedultrathintransitionmetalcarbidelayersforenergystorageandenergyharvestingapplications
AT wangzizhao lasersculpturedultrathintransitionmetalcarbidelayersforenergystorageandenergyharvestingapplications
AT dingxinrui lasersculpturedultrathintransitionmetalcarbidelayersforenergystorageandenergyharvestingapplications
AT xieyingxi lasersculpturedultrathintransitionmetalcarbidelayersforenergystorageandenergyharvestingapplications
AT chenjuhong lasersculpturedultrathintransitionmetalcarbidelayersforenergystorageandenergyharvestingapplications
AT hohmanjnathan lasersculpturedultrathintransitionmetalcarbidelayersforenergystorageandenergyharvestingapplications
AT sanghadasamohan lasersculpturedultrathintransitionmetalcarbidelayersforenergystorageandenergyharvestingapplications
AT grossmanjeffreyc lasersculpturedultrathintransitionmetalcarbidelayersforenergystorageandenergyharvestingapplications
AT linliwei lasersculpturedultrathintransitionmetalcarbidelayersforenergystorageandenergyharvestingapplications