期刊
ACS APPLIED MATERIALS & INTERFACES
卷 13, 期 40, 页码 47835-47844出版社
AMER CHEMICAL SOC
DOI: 10.1021/acsami.1c09849
关键词
sponge nanofibers; radial gradient porous structure; flexibility; molecular cages; chemical warfare agent adsorption
资金
- Fundamental Research Funds for the Central Universities [223201900081, 2232020G-02]
- National Natural Science Foundation of China [51925302, 51903036]
Flexible sponge-like nanofibers with hierarchical porous nanoarchitectures were successfully synthesized through a rigid-flexible coupling hypercross-linking method, showing exceptional performance in chemical warfare agent adsorption. This research may inspire the development of efficient and structurally adaptive chemical protective materials.
Poisons and poisonous weapons in armed conflict, especially chemical warfare agents (CWAs), pose serious threats to global security. Porous materials have recently been regarded as promising candidates to defend personnel in a CWA-contaminated environment, but challenges remain for integrating these materials into protective garments without sacrificing the intrinsic flexibility of fibers. Here, we report a rigid-flexible coupling hypercross-linking methodology to create flexible sponge-like nanofibers featuring hierarchical radial gradient porous nanoarchitectures, in which the inner structure is a mesoporous multichambered network, and the outer structure is a dense domain with a microporous network structure. Experimental and computational evidence supports the contention that sponge nanofibers with distinctive pore topology and robust bendability can be designed by manipulating the flexibility of building blocks. The resulting heterogeneous nanofibers exhibit integrated properties of spatially selective superstructures, abundant micropores, interconnected mesopores, a high surface area (579 m(2) g(-1)), remarkable flexibility, and exceptional CWA affinity, which are extraordinarily effective for adsorptive performance (498 mg g(-1)). The successful synthesis of these materials might inspire the development of chemical protective materials in an efficient, self-standing, and structurally adaptive form.
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