纳米技术
接口(物质)
功能(生物学)
计算机科学
生化工程
工程类
生物
材料科学
进化生物学
最大气泡压力法
气泡
并行计算
作者
Tedrick Thomas Salim Lew,Volodymyr B. Koman,Pavlo Gordiichuk,Minkyung Park,Michael S. Strano
标识
DOI:10.1002/admt.201900657
摘要
Abstract Plants are naturally abundant and display high sensitivity to ecological factors to thrive in diverse environmental conditions. As sessile organisms, they have evolved complex, internal, and interplant signaling pathways with distinct structures to promptly adjust to the constantly changing environment. In the past five years, the unique ways in which they exchange information with and function in the environment have inspired an emerging field of plant nanobionics, which describes the interface between living plants and nanotechnology to impart the former with novel and useful functions. The structural merits of plant organs and organelles have also inspired the creation of plant‐derived structures through biointerfacing with nanoparticles containing electronic and optical properties. Here, the emerging applications and vision of plant nanobionics are highlighted together with related plant‐inspired materials in potentially replacing the myriad devices in the everyday lives stamped out of plastic, containing circuit boards and consuming power from the electrical grid. Applications in environmental sensing, communication devices, and energy harvesting and conversion are comprehensively discussed.
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