TY - JOUR
T1 - Gas Recognition-Signal Transduction Binary Synergism in Bioinspired 2D Nanoconfined Ionic Membranes Enables Ultrasensitive NH3 Perception
AU - Xu, Lingyun
AU - Liu, Hongyang
AU - Zhao, Zhihao
AU - Sun, Xiaohan
AU - Wang, Weijie
AU - Chen, Zhe
AU - Xiang, Gongmo
AU - Chen, Yupeng
AU - Jiang, Xiangyu
AU - Jiang, Lei
N1 - Publisher Copyright:
© 2025 Wiley-VCH GmbH.
PY - 2026/2/12
Y1 - 2026/2/12
N2 - Conventional gas devices suffer from interfacial impedance limitations, resulting in limited sensitivity and increased power consumption due to their heterogeneous function architecture. Inspired by the uniquely integrated “recognition-transduction” mechanism discovered in insect odorant-binding proteins, 2D nanoconfined ionic membranes are developed through graphene oxide assembly-confined with ionic liquids, achieving monolithic integration of gas recognition and ion transduction. Graphene oxide nanosheets facilitate interlayer gas diffusion pathways, achieving response and recovery times of 10.86 and 13.76 s, respectively. Simultaneously, nanoconfinement enhances directional ion migration, resulting in exceptional NH3 selectivity, with a theoretical detection limit of 50.14 ppb and a sensitivity of 71.55%/ppm. The gas-ion interaction enhances ion transport by promoting ion dissociation and partially releasing nanoconfinement. Operating at room temperature with an ultralow power consumption of 0.52 µW, this system enables efficient monitoring of fresh food spoilage stages, supporting artificial intelligence-assisted classification. This bioinspired platform provides a new avenue to design integrated olfactory perception systems based on ionic signal transmission to achieve intelligent operation (e.g., food packaging), further promoting the development of living organism-like intelligent systems.
AB - Conventional gas devices suffer from interfacial impedance limitations, resulting in limited sensitivity and increased power consumption due to their heterogeneous function architecture. Inspired by the uniquely integrated “recognition-transduction” mechanism discovered in insect odorant-binding proteins, 2D nanoconfined ionic membranes are developed through graphene oxide assembly-confined with ionic liquids, achieving monolithic integration of gas recognition and ion transduction. Graphene oxide nanosheets facilitate interlayer gas diffusion pathways, achieving response and recovery times of 10.86 and 13.76 s, respectively. Simultaneously, nanoconfinement enhances directional ion migration, resulting in exceptional NH3 selectivity, with a theoretical detection limit of 50.14 ppb and a sensitivity of 71.55%/ppm. The gas-ion interaction enhances ion transport by promoting ion dissociation and partially releasing nanoconfinement. Operating at room temperature with an ultralow power consumption of 0.52 µW, this system enables efficient monitoring of fresh food spoilage stages, supporting artificial intelligence-assisted classification. This bioinspired platform provides a new avenue to design integrated olfactory perception systems based on ionic signal transmission to achieve intelligent operation (e.g., food packaging), further promoting the development of living organism-like intelligent systems.
KW - 2D nanoconfinement
KW - bioinspired integrated sensing system
KW - gas recognition-signal transduction
KW - ionic liquid
KW - ionic membrane
UR - https://www.scopus.com/pages/publications/105026076494
U2 - 10.1002/smll.202507249
DO - 10.1002/smll.202507249
M3 - 文章
AN - SCOPUS:105026076494
SN - 1613-6810
VL - 22
JO - Small
JF - Small
IS - 9
M1 - e07249
ER -