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受折纸启发的高拉伸和透气的 3D 可穿戴传感器,用于原位和在线监测植物生长和微气候。

Origami-inspired highly stretchable and breathable 3D wearable sensors for in-situ and online monitoring of plant growth and microclimate.

机构信息

College of Engineering, Nanjing Agricultural University, Nanjing, 210095, China; State Key Laboratory of Crop Genetics & Germplasm Enhancement and Utilization, Key Laboratory of Landscaping, Ministry of Agriculture and Rural Affairs, Key Laboratory of Biology of Ornamental Plants in East China, National Forestry and Grassland Administration, College of Horticulture, Nanjing Agricultural University, Nanjing, 210095, China; Zhongshan Biological Breeding Laboratory, No.50 Zhongling Street, Nanjing, 210014, China.

College of Engineering, Nanjing Agricultural University, Nanjing, 210095, China.

出版信息

Biosens Bioelectron. 2024 Sep 1;259:116379. doi: 10.1016/j.bios.2024.116379. Epub 2024 May 10.

Abstract

The emerging wearable plant sensors demonstrate the capability of in-situ measurement of physiological and micro-environmental information of plants. However, the stretchability and breathability of current wearable plant sensors are restricted mainly due to their 2D planar structures, which interfere with plant growth and development. Here, origami-inspired 3D wearable sensors have been developed for plant growth and microclimate monitoring. Unlike 2D counterparts, the 3D sensors demonstrate theoretically infinitely high stretchability and breathability derived from the structure rather than the material. They are adjusted to 100% and 111.55 mg cm·h in the optimized design. In addition to stretchability and breathability, the structural parameters are also used to control the strain distribution of the 3D sensors to enhance sensitivity and minimize interference. After integrating with corresponding sensing materials, electrodes, data acquisition and transmission circuits, and a mobile App, a miniaturized sensing system is produced with the capability of in-situ and online monitoring of plant elongation and microclimate. As a demonstration, the 3D sensors are worn on pumpkin leaves, which can accurately monitor the leaf elongation and microclimate with negligible hindrance to plant growth. Finally, the effects of the microclimate on the plant growth is resolved by analyzing the monitored data. This study would significantly promote the development of wearable plant sensors and their applications in the fields of plant phenomics, plant-environment interface, and smart agriculture.

摘要

新兴的可穿戴植物传感器展示了原位测量植物生理和微环境信息的能力。然而,由于其 2D 平面结构,当前可穿戴植物传感器的拉伸性和透气性受到限制,这会干扰植物的生长和发育。在这里,受折纸启发的 3D 可穿戴传感器已经被开发出来,用于监测植物的生长和微气候。与 2D 对应物不同,3D 传感器理论上具有无限高的拉伸性和透气性,这是由结构而不是材料带来的。在优化设计中,它们的拉伸率可以达到 100%,透气性可以达到 111.55mg·cm·h。除了拉伸性和透气性,结构参数还用于控制 3D 传感器的应变分布,以提高灵敏度并最小化干扰。在与相应的传感材料、电极、数据采集和传输电路以及移动应用程序集成后,一个具有原位和在线监测植物伸长和微气候能力的小型化传感系统被制造出来。作为一个演示,3D 传感器被佩戴在南瓜叶上,可以准确地监测叶片伸长和微气候,对植物生长的干扰可以忽略不计。最后,通过分析监测到的数据来解决微气候对植物生长的影响。这项研究将极大地推动可穿戴植物传感器的发展及其在植物表型、植物-环境界面和智能农业等领域的应用。

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