TY - JOUR
T1 - Programmable Pore Engineering of Carbon Nanospheres With Tunable Architectures
T2 - Toward Ultra-Efficient Electromagnetic Wave Absorption
AU - Wei, Mengmeng
AU - Zhou, Bingqian
AU - Zhai, Xiaokang
AU - Ma, Guosheng
AU - Qi, Fenglian
AU - Wang, Xiaolei
AU - Zhang, Guoxian
AU - Liu, Kai
AU - Cao, Lan
AU - Zhang, Qiuyu
AU - Zhang, Baoliang
N1 - Publisher Copyright:
© 2026 Wiley-VCH GmbH.
PY - 2026
Y1 - 2026
N2 - Precisely and controllably engineering the pore structure of carbon nanomaterials plays a vital role in achieving desired properties and thereby boosting their performance in diverse fields, while it still remains a huge challenge owing to the remarkable growth of structural complexity. In this study, we successfully explore a quantitative dual-template-mediated co-assembly strategy to accurately achieve continuous structural transition of hierarchical porous carbon nanospheres across a broad scope of pore architecture. Specifically, this simple but powerful strategy can realize meticulous control over the reaction system's co-assembly behaviors and further quantitatively manipulate structural parameters of the derived nanospheres by adjusting the packing parameter p. Impressively, the dynamic structural transformation process of the resultant carbon nanospheres resembles a flower-blossoming process. Under optimal synthesis conditions, the obtained flower-like carbon nanospheres feature a hierarchical pore system composed of micro-/meso-/macropores, high surface-to-volume ratio, abundant active sites, rich heteroatom doping, and fast transfer dynamics, thereby delivering ultra-high electromagnetic wave absorption performance. Our study establishes a customizable and programmable platform for engineering a variety of hierarchical porous nanostructures, unlocking distinctive properties for advanced applications.
AB - Precisely and controllably engineering the pore structure of carbon nanomaterials plays a vital role in achieving desired properties and thereby boosting their performance in diverse fields, while it still remains a huge challenge owing to the remarkable growth of structural complexity. In this study, we successfully explore a quantitative dual-template-mediated co-assembly strategy to accurately achieve continuous structural transition of hierarchical porous carbon nanospheres across a broad scope of pore architecture. Specifically, this simple but powerful strategy can realize meticulous control over the reaction system's co-assembly behaviors and further quantitatively manipulate structural parameters of the derived nanospheres by adjusting the packing parameter p. Impressively, the dynamic structural transformation process of the resultant carbon nanospheres resembles a flower-blossoming process. Under optimal synthesis conditions, the obtained flower-like carbon nanospheres feature a hierarchical pore system composed of micro-/meso-/macropores, high surface-to-volume ratio, abundant active sites, rich heteroatom doping, and fast transfer dynamics, thereby delivering ultra-high electromagnetic wave absorption performance. Our study establishes a customizable and programmable platform for engineering a variety of hierarchical porous nanostructures, unlocking distinctive properties for advanced applications.
KW - carbon nanosphere
KW - electromagnetic wave absorption
KW - pore engineering
KW - structural transformation
UR - https://www.scopus.com/pages/publications/105043925888
U2 - 10.1002/adfm.76836
DO - 10.1002/adfm.76836
M3 - 文章
AN - SCOPUS:105043925888
SN - 1616-301X
JO - Advanced Functional Materials
JF - Advanced Functional Materials
ER -