Laboratory of Organic Electronics, Department of Science and Technology, Linköping University, SE-601 74 Norrköping, Sweden.
Department of Forest Genetics and Plant Physiology, Swedish University of Agricultural Sciences, SE-901 87 Umeå, Sweden.
Sci Adv. 2015 Nov 20;1(10):e1501136. doi: 10.1126/sciadv.1501136. eCollection 2015 Nov.
The roots, stems, leaves, and vascular circuitry of higher plants are responsible for conveying the chemical signals that regulate growth and functions. From a certain perspective, these features are analogous to the contacts, interconnections, devices, and wires of discrete and integrated electronic circuits. Although many attempts have been made to augment plant function with electroactive materials, plants' "circuitry" has never been directly merged with electronics. We report analog and digital organic electronic circuits and devices manufactured in living plants. The four key components of a circuit have been achieved using the xylem, leaves, veins, and signals of the plant as the template and integral part of the circuit elements and functions. With integrated and distributed electronics in plants, one can envisage a range of applications including precision recording and regulation of physiology, energy harvesting from photosynthesis, and alternatives to genetic modification for plant optimization.
高等植物的根、茎、叶和脉管系统负责传递调节生长和功能的化学信号。从某种意义上说,这些特征类似于离散和集成电子电路的触点、互连、器件和电线。尽管人们已经尝试了许多方法来用电活性材料来增强植物的功能,但植物的“电路”从未与电子设备直接融合。我们报告了在活体植物中制造的模拟和数字有机电子电路和器件。使用木质部、叶片、叶脉和植物信号作为电路元件和功能的模板和组成部分,实现了电路的四个关键组件。通过在植物中集成和分布式电子设备,可以设想一系列应用,包括精确记录和调节生理学、从光合作用中收集能量,以及替代遗传修饰以优化植物。