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April 18, 2026ACS Applied Materials & Interfaces0 citations

In-Planta Tattoo and Kirigami Sensors for Moisture-Powered Monitoring of Vapor Pressure Deficit and Growth Dynamics

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NHNafize Ishtiaque HossainKSKundan SahaASAtul Sharma

Key Points

  • This research aims to develop a scalable sensor system that monitors plant hydration and growth dynamics using moisture-powered technology.
  • Designed a tattoo sensor to estimate vapor pressure deficit (VPD) and measure temperature and humidity.
  • Developed a kirigami-inspired strain sensor for tracking radial stem growth.
  • Employed vanadium pentoxide (V2O5) nanosheet membrane for energy harvesting from ambient moisture.
  • Utilized cleanroom-free, roll-to-roll compatible fabrication methods for sensor production.
  • Tattoo sensor provides a power density of 0.1114 μW/cm² while measuring temperature and humidity.
  • High sensitivity of V2O5 sensor: 4.2 mV/% RH for humidity and 1.02%/°C for temperature over 10 days.
  • Kirigami strain sensor continues to track growth with a gauge factor of 1.5 for over 20 days, resistant to unrelated mechanical disturbances.

Abstract

We report a scalable, moisture-powered in-planta sensor platform for the continuous monitoring of plant hydration and growth. The system integrates two components: a leaf-mounted tattoo sensor for estimating vapor pressure deficit (VPD) and a kirigami-inspired strain sensor for tracking radial stem growth. Uniquely, the tattoo sensor serves a dual function: measuring temperature and humidity beneath the leaf surface while simultaneously harvesting power from ambient moisture via a vanadium pentoxide (V2O5) nanosheet membrane. This moist-electric-generator (MEG) configuration enables energy-autonomous operation, delivering a power density of 0.1114 μW/cm2. The V2O5-based sensor exhibits high sensitivity to humidity (4.2 mV/% RH) and temperature (1.02%/°C), enabling accurate VPD estimation for over 10 days until leaf senescence. The eutectogel-based kirigami strain sensor, wrapped around the stem, offers a gauge factor of 1.5 and immunity to unrelated mechanical disturbances, allowing for continuous growth tracking for more than 20 days. Both sensors are fabricated via cleanroom-free, roll-to-roll compatible methods, underscoring their potential for large-scale agricultural deployment to monitor abiotic stress and improve crop management.

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Cite This Study

Hossain et al. (2026) studied this question.

synapsesocial.com/papers/69e31f7340886becb653eb6ehttps://doi.org/10.1021/acsami.6c03190
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