Confinement‐Regulated Crystal Phase Engineering Enables Structured Semiconductor Fiber Systems for Plant Transpiration Dynamics Monitoring

Y Yisen Wang (School of Traditional Chinese Medicine Faculty of Medicine Yangzhou University Yangzhou Jiangsu P. R. China) C Cheng Liu J Jisong Jia (State Key Laboratory of Advanced Fiber Materials, College of Materials Science and Engineering Donghua University Shanghai China) Z Zhengyang Jin L Luxue Zhang (State Key Laboratory of Advanced Fiber Materials, College of Materials Science and Engineering Donghua University Shanghai China) W Wangxin Zhou (School of Emergent Soft Matter South China University of Technology Guangzhou Guangdong China) H Hui Zhang (The Fourth Hospital of Hebei Medical University Shijiazhuang China) W Wenshu Ouyang (State Key Laboratory of Advanced Fiber Materials, College of Materials Science and Engineering Donghua University Shanghai China) H Hailiang Wang (Department of Chemistry) M Meifang Zhu W Wei Yan

Abstract

ABSTRACT Transpiration is fundamental to plant life, yet its rhythms remain difficult to resolve because conventional sensing approaches perturb stomatal boundary layers, are limited to localized readouts, and struggle to reconcile moisture responsiveness with stable photodetection under dynamic humidity fluctuations. Herein, we report the first distributed plant microclimate mapping textile platform constructed from semiconductor fibers enabled by two distinct confinement‐regulated crystal phase engineering strategies. Local spatially confined thermal reconfiguration induces optimized crystallization of the semiconductor fiber core, whereas nanosphere confinement governs humidity‐triggered, reversible phase switching in the perovskite fiber cladding between CsPbBr 3 and CsPb 2 Br 5 , enabling stable photodetection together with reversible humidity response. Continuous thermal drawing and polymer coating establish a scalable route to kilometre‐scale fiber fabrication, yielding fibers with sophisticated structure that sustain linear photodetection with an on/off ratio exceeding 50 over 10 000 switching cycles while maintaining fatigue‐free humidity sensing over 600 cycles. Woven into breathable textiles, the fiber arrays enable sub‐centimetre spatial mapping and, in commercial greenhouses, resolve spatial irradiance variations as small as 10 mW/cm 2 within real microclimates, revealing microclimate heterogeneity relevant to plant transpiration and growth. These results establish phase‐engineered semiconductor fiber textiles as a scalable platform for distributed plant microclimate mapping and precision agriculture.

Article Details

Volume / Issue Vol. 38, Issue 40
Published July 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (11)

Y

Yisen Wang

School of Traditional Chinese Medicine Faculty of Medicine Yangzhou University Yangzhou Jiangsu P. R. China

C

Cheng Liu

J

Jisong Jia

State Key Laboratory of Advanced Fiber Materials, College of Materials Science and Engineering Donghua University Shanghai China

Z

Zhengyang Jin

L

Luxue Zhang

State Key Laboratory of Advanced Fiber Materials, College of Materials Science and Engineering Donghua University Shanghai China

W

Wangxin Zhou

School of Emergent Soft Matter South China University of Technology Guangzhou Guangdong China

H

Hui Zhang

The Fourth Hospital of Hebei Medical University Shijiazhuang China

W

Wenshu Ouyang

State Key Laboratory of Advanced Fiber Materials, College of Materials Science and Engineering Donghua University Shanghai China

H

Hailiang Wang

Department of Chemistry

M

Meifang Zhu

W

Wei Yan