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共栖植物可穿戴传感器原位监测植物中的水分运输。

Cohabiting Plant-Wearable Sensor In Situ Monitors Water Transport in Plant.

机构信息

College of Biosystems Engineering and Food Science Zhejiang University Hangzhou 310058 China.

Department of Engineering University of Cambridge Cambridge CB3 0FF UK.

出版信息

Adv Sci (Weinh). 2021 Mar 9;8(10):2003642. doi: 10.1002/advs.202003642. eCollection 2021 May.

Abstract

The boom of plant phenotype highlights the need to measure the physiological characteristics of an individual plant. However, continuous real-time monitoring of a plant's internal physiological status remains challenging using traditional silicon-based sensor technology, due to the fundamental mismatch between rigid sensors and soft and curved plant surfaces. Here, the first flexible electronic sensing device is reported that can harmlessly cohabitate with the plant and continuously monitor its stem sap flow, a critical plant physiological characteristic for analyzing plant health, water consumption, and nutrient distribution. Due to a special design and the materials chosen, the realized plant-wearable sensor is thin, soft, lightweight, air/water/light-permeable, and shows excellent biocompatibility, therefore enabling the sap flow detection in a continuous and non-destructive manner. The sensor can serve as a noninvasive, high-throughput, low-cost toolbox, and holds excellent potentials in phenotyping. Furthermore, the real-time investigation on stem flow insides watermelon reveals a previously unknown day/night shift pattern of water allocation between fruit and its adjacent branch, which has not been reported before.

摘要

植物表型的蓬勃发展凸显了对个体植物生理特性进行测量的必要性。然而,由于刚性传感器与柔软、弯曲的植物表面之间存在根本不匹配,传统的基于硅的传感器技术在连续实时监测植物内部生理状态方面仍然具有挑战性。在这里,报道了第一个灵活的电子传感设备,它可以与植物无害共存,并连续监测其茎汁液流,这是分析植物健康、耗水量和养分分布的关键植物生理特性。由于特殊的设计和所选材料,实现的植物可穿戴传感器很薄、柔软、轻巧、透气/透水性和具有优异的生物相容性,因此能够以连续和非破坏性的方式检测汁液流。该传感器可以作为一种非侵入性、高通量、低成本的工具包,在表型研究中具有巨大的潜力。此外,对西瓜茎内汁液流的实时研究揭示了一个以前未知的果实与其相邻枝条之间水分分配的日夜转移模式,这是以前未曾报道过的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/15cb/8132156/4e46dd7d589f/ADVS-8-2003642-g007.jpg

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