Strategies for achieving balance between detonation performance and crystal stability of high-energy-density materials

Performance-stability contradiction of high-energy-density materials (HEDMs) is a long-standing puzzle in the field of chemistry and material science. Bridging the gap that exists between detonation performance of new HEDMs and their stability remains a formidable challenge. Achieving optimal balanc...

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Main Authors: Li, Chongyang, Li, Hui, Zong, He-Hou, Huang, Yongli, Gozin, Michael, Sun, Changqing, Zhang, Lei
Other Authors: School of Electrical and Electronic Engineering
Format: Article
Language:English
Published: 2020
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Online Access:https://hdl.handle.net/10356/145565
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1455652020-12-28T09:14:12Z Strategies for achieving balance between detonation performance and crystal stability of high-energy-density materials Li, Chongyang Li, Hui Zong, He-Hou Huang, Yongli Gozin, Michael Sun, Changqing Zhang, Lei School of Electrical and Electronic Engineering Centre for Micro-/Nano-electronics (NOVITAS) Engineering::Electrical and electronic engineering Performance-stability High-energy-density Materials Performance-stability contradiction of high-energy-density materials (HEDMs) is a long-standing puzzle in the field of chemistry and material science. Bridging the gap that exists between detonation performance of new HEDMs and their stability remains a formidable challenge. Achieving optimal balance between the two contradictory factors is of a significant demand for deep-well oil and gas drilling, space exploration, and other civil and defense applications. Herein, supercomputers and latest quantitative computational strategies were employed and high-throughput quantum calculations were conducted for 67 reported HEDMs. Based on statistical analysis of large amounts of physico-chemical data, in-crystal interspecies interactions were identified to be the one that provokes the performance-stability contradiction of HEDMs. To design new HEDMs with both good detonation performance and high stability, the proposed systematic and comprehensive strategies must be satisfied, which could promote the development of crystal engineering of HEDMs to an era of theory-guided rational design of materials. Published version 2020-12-28T09:14:12Z 2020-12-28T09:14:12Z 2020 Journal Article Li, C., Li, H., Zong, H.-H., Huang, Y., Gozin, M., Sun, C., & Zhang, L. (2020). Strategies for achieving balance between detonation performance and crystal stability of high-energy-density materials. iScience, 23(3), 100944-. doi:10.1016/j.isci.2020.100944 2589-0042 https://hdl.handle.net/10356/145565 10.1016/j.isci.2020.100944 32163898 3 23 en iScience © 2020 The Author(s). This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/). application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Electrical and electronic engineering
Performance-stability
High-energy-density Materials
spellingShingle Engineering::Electrical and electronic engineering
Performance-stability
High-energy-density Materials
Li, Chongyang
Li, Hui
Zong, He-Hou
Huang, Yongli
Gozin, Michael
Sun, Changqing
Zhang, Lei
Strategies for achieving balance between detonation performance and crystal stability of high-energy-density materials
description Performance-stability contradiction of high-energy-density materials (HEDMs) is a long-standing puzzle in the field of chemistry and material science. Bridging the gap that exists between detonation performance of new HEDMs and their stability remains a formidable challenge. Achieving optimal balance between the two contradictory factors is of a significant demand for deep-well oil and gas drilling, space exploration, and other civil and defense applications. Herein, supercomputers and latest quantitative computational strategies were employed and high-throughput quantum calculations were conducted for 67 reported HEDMs. Based on statistical analysis of large amounts of physico-chemical data, in-crystal interspecies interactions were identified to be the one that provokes the performance-stability contradiction of HEDMs. To design new HEDMs with both good detonation performance and high stability, the proposed systematic and comprehensive strategies must be satisfied, which could promote the development of crystal engineering of HEDMs to an era of theory-guided rational design of materials.
author2 School of Electrical and Electronic Engineering
author_facet School of Electrical and Electronic Engineering
Li, Chongyang
Li, Hui
Zong, He-Hou
Huang, Yongli
Gozin, Michael
Sun, Changqing
Zhang, Lei
format Article
author Li, Chongyang
Li, Hui
Zong, He-Hou
Huang, Yongli
Gozin, Michael
Sun, Changqing
Zhang, Lei
author_sort Li, Chongyang
title Strategies for achieving balance between detonation performance and crystal stability of high-energy-density materials
title_short Strategies for achieving balance between detonation performance and crystal stability of high-energy-density materials
title_full Strategies for achieving balance between detonation performance and crystal stability of high-energy-density materials
title_fullStr Strategies for achieving balance between detonation performance and crystal stability of high-energy-density materials
title_full_unstemmed Strategies for achieving balance between detonation performance and crystal stability of high-energy-density materials
title_sort strategies for achieving balance between detonation performance and crystal stability of high-energy-density materials
publishDate 2020
url https://hdl.handle.net/10356/145565
_version_ 1688665275557216256