Photosensitive ion channels in layered MXene membranes modified with plasmonic gold nanostars and cellulose nanofibers.
Jeonghee YeomAyoung ChoeJiyun LeeJeeyoon KimJinyoung KimSeung Hak OhCheolhong ParkSangyun NaYoung-Eun ShinYoungoh LeeYun Goo RoSang Kyu KwakHyun-Hyub KoPublished in: Nature communications (2023)
Ion channels transduce external stimuli into ion-transport-mediated signaling, which has received considerable attention in diverse fields such as sensors, energy harvesting devices, and desalination membrane. In this work, we present a photosensitive ion channel based on plasmonic gold nanostars (AuNSs) and cellulose nanofibers (CNFs) embedded in layered MXene nanosheets. The MXene/AuNS/CNF (MAC) membrane provides subnanometer-sized ionic pathways for light-sensitive cationic flow. When the MAC nanochannel is exposed to NIR light, a photothermal gradient is formed, which induces directional photothermo-osmotic flow of nanoconfined electrolyte against the thermal gradient and produces a net ionic current. MAC membrane exhibits enhanced photothermal current compared with pristine MXene, which is attributed to the combined photothermal effects of plasmonic AuNSs and MXene and the widened interspacing of the MAC composite via the hydrophilic nanofibrils. The MAC composite membranes are envisioned to be applied in flexible ionic channels with ionogels and light-controlled ionic circuits.
Keyphrases
- ionic liquid
- photodynamic therapy
- solid state
- drug release
- cancer therapy
- energy transfer
- drug delivery
- single molecule
- reduced graphene oxide
- silver nanoparticles
- highly efficient
- label free
- liquid chromatography
- visible light
- quantum dots
- fluorescent probe
- solid phase extraction
- high resolution
- metal organic framework
- walled carbon nanotubes