TY - JOUR
T1 - Multifunctional Plasmonic/Metal–Organic Framework Biohybrid Aerogels
AU - Wang, Yixuan
AU - Li, Jingyao
AU - Gupta, Prashant
AU - Wang, Zixiao
AU - Jiang, Qisheng
AU - Debnath, Avishek
AU - Zhang, Ruixue
AU - Huang, Hengbo
AU - Kim, Minkyu
AU - Zhang, Fuzhong
AU - Tsukruk, Vladimir V.
AU - Singamaneni, Srikanth
N1 - Publisher Copyright:
© 2025 American Chemical Society
PY - 2025/12/16
Y1 - 2025/12/16
N2 - A biotemplated in situ growth method was employed to fabricate self-supporting metal–organic framework (MOF) aerogels using bacterial nanocellulose (BNC) and collagen foam as templates. The one-step synthesis method enables uniform and dense coating of MOF crystals (ZIF-8 and ZIF-L) on nanocellulose and collagen nanofibers, resulting in an interconnected 3D open porous network. Integrating plasmonic nanostructures with metal–organic frameworks (MOFs) in three-dimensional (3D) aerogels enables the realization of multifunctional materials that combine high porosity, thermal stability, electromagnetic field enhancement, and photothermal properties, therefore simultaneously supporting surface-enhanced Raman scattering (SERS)-based sensing and antimicrobial functions. The plasmonic/MOF hybrid aerogels allow highly sensitive vapor-phase detection of toxic volatile organics (TVOs) including p-aminothiophenol (p-ATP), formalin, and aniline, harnessing the synergistic effects of MOF-assisted analyte trapping and electromagnetic field enhancement from the plasmonic nanostructures. The photothermal properties of the plasmonic/MOF aerogels together with Zn2+/Ag+ ion release resulted in high antibacterial efficacy (>99%) against Escherichia coli and Staphylococcus aureus under low-power laser irradiation. The simple, scalable, and versatile method demonstrated here can be extended to other functional nanomaterials and MOFs for realizing multifunctional materials with a 3D open porous architecture.
AB - A biotemplated in situ growth method was employed to fabricate self-supporting metal–organic framework (MOF) aerogels using bacterial nanocellulose (BNC) and collagen foam as templates. The one-step synthesis method enables uniform and dense coating of MOF crystals (ZIF-8 and ZIF-L) on nanocellulose and collagen nanofibers, resulting in an interconnected 3D open porous network. Integrating plasmonic nanostructures with metal–organic frameworks (MOFs) in three-dimensional (3D) aerogels enables the realization of multifunctional materials that combine high porosity, thermal stability, electromagnetic field enhancement, and photothermal properties, therefore simultaneously supporting surface-enhanced Raman scattering (SERS)-based sensing and antimicrobial functions. The plasmonic/MOF hybrid aerogels allow highly sensitive vapor-phase detection of toxic volatile organics (TVOs) including p-aminothiophenol (p-ATP), formalin, and aniline, harnessing the synergistic effects of MOF-assisted analyte trapping and electromagnetic field enhancement from the plasmonic nanostructures. The photothermal properties of the plasmonic/MOF aerogels together with Zn2+/Ag+ ion release resulted in high antibacterial efficacy (>99%) against Escherichia coli and Staphylococcus aureus under low-power laser irradiation. The simple, scalable, and versatile method demonstrated here can be extended to other functional nanomaterials and MOFs for realizing multifunctional materials with a 3D open porous architecture.
KW - bacterial nanocellulose (BNC)
KW - biohybrid
KW - collagen foam
KW - metal−organic framework (MOF)
KW - plasmonic aerogel
UR - https://www.scopus.com/pages/publications/105025032918
U2 - 10.1021/acsnano.5c12221
DO - 10.1021/acsnano.5c12221
M3 - Article
C2 - 41343285
AN - SCOPUS:105025032918
SN - 1936-0851
VL - 19
SP - 41571
EP - 41583
JO - ACS nano
JF - ACS nano
IS - 49
ER -