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一种受生物纤维支架启发的具有三重网络增强结构的可穿戴导电水凝胶,用于实时定量传感施加在水果表面的压缩力。

A wearable conductive hydrogel with triple network reinforcement inspired by bio-fibrous scaffolds for real-time quantitatively sensing compression force exerted on fruit surface.

作者信息

Yang Zhichao, Qin Ziqiang, Wu Menglu, Hu Haimin, Nie Pengcheng, Wang Yong, Li Qilei, Wu Di, He Yong, Chen Kunsong

机构信息

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

College of Agriculture and Biotechnology/Zhejiang Provincial Key Laboratory of Horticultural Plant Integrative Biology/Key Laboratory of Ministry of Agriculture and Rural Affairs of Biology and Genetic Improvement of Horticultural Crops (Growth and Development), Zhejiang University, Hangzhou 310058, PR China.

出版信息

J Adv Res. 2025 Jul;73:161-172. doi: 10.1016/j.jare.2024.09.002. Epub 2024 Sep 3.

Abstract

INTRODUCTION

Mechanical stresses incurred during post-harvest fruit storage and transportation profoundly impact decay and losses. Currently, the monitoring of mechanical forces is primarily focused on vibrational forces experienced by containers and vehicles and impact forces affecting containers. However, the detection of compressive forces both among interior fruit and between fruit and packaging surfaces remains deficient. Hence, conformable materials capable of sensing compressive stresses are necessary.

OBJECTIVES

In the present study, a triple-network-reinforced PSA/LiCl/CCN@AgNP conductive hydrogel was synthesized for compression force detection on fruit surfaces based on changes in intrinsic impedance under mechanical loading.

METHODS

The conductive hydrogel was characterized in terms of its adhesion, mechanics, frost resistance, water retention, conductivity, mechanical force-sensing properties, and feasibility for monitoring mechanical forces. Then, a portable complex impedance recorder was developed to interface with the conductive hydrogel and its mechanical force sensing ability was evaluated.

RESULTS

Beyond its inherent conductivity, the hydrogel exhibited notable pressure sensitivity within the strain range of 1 % to 80 %. The conductive hydrogel also demonstrated a commendable adhesion property, favorable tensile property (580 % elongation at break), substantial compressive strength and durability, and a long-term water retention capability. After exposure to -20 °C for 96 h, the hydrogel maintained its mechanical strength, affirming its anti-freezing property. In addition, a portable complex impedance recorder with sustained signal measurement stability was developed to quantitatively acquire the hydrogel resistance changes in response to compression forces. Finally, the effectiveness of the conductive hydrogel for sensing compression force on the surface of apple fruits was validated.

CONCLUSION

The conductive hydrogel holds promise for applications in smart packaging, wherein it can detect crucial mechanical stress on fruit, convert it into electrical signals, and further transmit these signals to the cloud, thereby enabling the real-time sensing of mechanical forces experienced by fruits and enhancing post-harvest fruit loss management.

摘要

引言

采后果实储存和运输过程中产生的机械应力对果实腐烂和损失有深远影响。目前,机械力监测主要集中在容器和车辆所经历的振动力以及影响容器的冲击力上。然而,对于果实内部以及果实与包装表面之间的压缩力检测仍然不足。因此,需要能够感知压缩应力的适形材料。

目的

在本研究中,合成了一种三网络增强的PSA/LiCl/CCN@AgNP导电水凝胶,用于基于机械加载下固有阻抗的变化来检测果实表面的压缩力。

方法

对导电水凝胶的粘附性、力学性能、抗冻性、保水性、导电性、机械力传感性能以及监测机械力的可行性进行了表征。然后,开发了一种便携式复阻抗记录仪与导电水凝胶连接,并评估其机械力传感能力。

结果

除了其固有的导电性外,该水凝胶在1%至80%的应变范围内表现出显著的压力敏感性。导电水凝胶还表现出良好的粘附性能、优异的拉伸性能(断裂伸长率为580%)、较高的抗压强度和耐久性以及长期保水能力。在-20°C下暴露96小时后,水凝胶保持其机械强度,证实了其抗冻性能。此外,还开发了一种具有持续信号测量稳定性的便携式复阻抗记录仪,以定量获取水凝胶电阻随压缩力的变化。最后,验证了导电水凝胶用于检测苹果果实表面压缩力的有效性。

结论

导电水凝胶在智能包装应用中具有潜力,它可以检测果实上的关键机械应力,将其转换为电信号,并进一步将这些信号传输到云端,从而实现对果实所经历机械力的实时传感,并加强采后果实损失管理。

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