Cargando…
The effect of ZnCl(2) activation on microwave absorbing performance in walnut shell-derived nano-porous carbon
Porous carbon has been expected to be a potential candidate as a lightweight and efficient microwave absorber. Nano-porous carbon carbonized directly from a walnut shell exhibits narrow microwave absorption frequency bandwidth, while the activation process can adjust the pore structure and optimize...
Autores principales: | , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
The Royal Society of Chemistry
2019
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9062120/ https://www.ncbi.nlm.nih.gov/pubmed/35520714 http://dx.doi.org/10.1039/c8ra09932d |
_version_ | 1784698863590834176 |
---|---|
author | Wang, Lixi Zhou, Panpan Guo, Yu Zhang, Jing Qiu, Xu Guan, Yongkang Yu, Mingxun Zhu, Hongli Zhang, Qitu |
author_facet | Wang, Lixi Zhou, Panpan Guo, Yu Zhang, Jing Qiu, Xu Guan, Yongkang Yu, Mingxun Zhu, Hongli Zhang, Qitu |
author_sort | Wang, Lixi |
collection | PubMed |
description | Porous carbon has been expected to be a potential candidate as a lightweight and efficient microwave absorber. Nano-porous carbon carbonized directly from a walnut shell exhibits narrow microwave absorption frequency bandwidth, while the activation process can adjust the pore structure and optimize the microwave absorption performance. Herein, porous carbon materials were successfully prepared using walnut shells as precursors and ZnCl(2) as the activating agent. The superior microwave absorption performances of the as-prepared samples could be attributed to the well-developed pore structures and the enhanced dielectric loss capacities of the samples. The interfacial polarization in the walls of the pores and the defects in the samples significantly contributed to the enhancement of the dielectric loss capacities of the samples. In this work, the broadband microwave absorbing porous carbon exhibited an effective absorption bandwidth (reflection loss ≤ −10 dB) of 7.2 GHz (ranging from 10.8 GHz to 18.0 GHz) when the absorber thickness was 2.5 mm. In addition, an effective absorption bandwidth of 6.0 GHz (ranging from 11.4 GHz to 17.4 GHz) could also be achieved when the absorber thickness was only 2.0 mm. The samples exhibited low densities, strong microwave absorption performances and wide effective absorption bandwidths with thin absorber thicknesses, due to which they have a great potential as lightweight and efficient microwave absorbers. |
format | Online Article Text |
id | pubmed-9062120 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2019 |
publisher | The Royal Society of Chemistry |
record_format | MEDLINE/PubMed |
spelling | pubmed-90621202022-05-04 The effect of ZnCl(2) activation on microwave absorbing performance in walnut shell-derived nano-porous carbon Wang, Lixi Zhou, Panpan Guo, Yu Zhang, Jing Qiu, Xu Guan, Yongkang Yu, Mingxun Zhu, Hongli Zhang, Qitu RSC Adv Chemistry Porous carbon has been expected to be a potential candidate as a lightweight and efficient microwave absorber. Nano-porous carbon carbonized directly from a walnut shell exhibits narrow microwave absorption frequency bandwidth, while the activation process can adjust the pore structure and optimize the microwave absorption performance. Herein, porous carbon materials were successfully prepared using walnut shells as precursors and ZnCl(2) as the activating agent. The superior microwave absorption performances of the as-prepared samples could be attributed to the well-developed pore structures and the enhanced dielectric loss capacities of the samples. The interfacial polarization in the walls of the pores and the defects in the samples significantly contributed to the enhancement of the dielectric loss capacities of the samples. In this work, the broadband microwave absorbing porous carbon exhibited an effective absorption bandwidth (reflection loss ≤ −10 dB) of 7.2 GHz (ranging from 10.8 GHz to 18.0 GHz) when the absorber thickness was 2.5 mm. In addition, an effective absorption bandwidth of 6.0 GHz (ranging from 11.4 GHz to 17.4 GHz) could also be achieved when the absorber thickness was only 2.0 mm. The samples exhibited low densities, strong microwave absorption performances and wide effective absorption bandwidths with thin absorber thicknesses, due to which they have a great potential as lightweight and efficient microwave absorbers. The Royal Society of Chemistry 2019-03-27 /pmc/articles/PMC9062120/ /pubmed/35520714 http://dx.doi.org/10.1039/c8ra09932d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/ |
spellingShingle | Chemistry Wang, Lixi Zhou, Panpan Guo, Yu Zhang, Jing Qiu, Xu Guan, Yongkang Yu, Mingxun Zhu, Hongli Zhang, Qitu The effect of ZnCl(2) activation on microwave absorbing performance in walnut shell-derived nano-porous carbon |
title | The effect of ZnCl(2) activation on microwave absorbing performance in walnut shell-derived nano-porous carbon |
title_full | The effect of ZnCl(2) activation on microwave absorbing performance in walnut shell-derived nano-porous carbon |
title_fullStr | The effect of ZnCl(2) activation on microwave absorbing performance in walnut shell-derived nano-porous carbon |
title_full_unstemmed | The effect of ZnCl(2) activation on microwave absorbing performance in walnut shell-derived nano-porous carbon |
title_short | The effect of ZnCl(2) activation on microwave absorbing performance in walnut shell-derived nano-porous carbon |
title_sort | effect of zncl(2) activation on microwave absorbing performance in walnut shell-derived nano-porous carbon |
topic | Chemistry |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9062120/ https://www.ncbi.nlm.nih.gov/pubmed/35520714 http://dx.doi.org/10.1039/c8ra09932d |
work_keys_str_mv | AT wanglixi theeffectofzncl2activationonmicrowaveabsorbingperformanceinwalnutshellderivednanoporouscarbon AT zhoupanpan theeffectofzncl2activationonmicrowaveabsorbingperformanceinwalnutshellderivednanoporouscarbon AT guoyu theeffectofzncl2activationonmicrowaveabsorbingperformanceinwalnutshellderivednanoporouscarbon AT zhangjing theeffectofzncl2activationonmicrowaveabsorbingperformanceinwalnutshellderivednanoporouscarbon AT qiuxu theeffectofzncl2activationonmicrowaveabsorbingperformanceinwalnutshellderivednanoporouscarbon AT guanyongkang theeffectofzncl2activationonmicrowaveabsorbingperformanceinwalnutshellderivednanoporouscarbon AT yumingxun theeffectofzncl2activationonmicrowaveabsorbingperformanceinwalnutshellderivednanoporouscarbon AT zhuhongli theeffectofzncl2activationonmicrowaveabsorbingperformanceinwalnutshellderivednanoporouscarbon AT zhangqitu theeffectofzncl2activationonmicrowaveabsorbingperformanceinwalnutshellderivednanoporouscarbon AT wanglixi effectofzncl2activationonmicrowaveabsorbingperformanceinwalnutshellderivednanoporouscarbon AT zhoupanpan effectofzncl2activationonmicrowaveabsorbingperformanceinwalnutshellderivednanoporouscarbon AT guoyu effectofzncl2activationonmicrowaveabsorbingperformanceinwalnutshellderivednanoporouscarbon AT zhangjing effectofzncl2activationonmicrowaveabsorbingperformanceinwalnutshellderivednanoporouscarbon AT qiuxu effectofzncl2activationonmicrowaveabsorbingperformanceinwalnutshellderivednanoporouscarbon AT guanyongkang effectofzncl2activationonmicrowaveabsorbingperformanceinwalnutshellderivednanoporouscarbon AT yumingxun effectofzncl2activationonmicrowaveabsorbingperformanceinwalnutshellderivednanoporouscarbon AT zhuhongli effectofzncl2activationonmicrowaveabsorbingperformanceinwalnutshellderivednanoporouscarbon AT zhangqitu effectofzncl2activationonmicrowaveabsorbingperformanceinwalnutshellderivednanoporouscarbon |