**Executive Summary**
A flexible, low-cost, multipurpose sensor has been developed using pencil, paper, and graphene by researchers at Gauhati University. The sensor can measure soil moisture, detect plant drought stress, track human breathing patterns, and act as a smart diaper wetness detector. This innovation addresses the need for affordable and sustainable sensor technologies for agriculture and healthcare.
**Key Points / Main Content**
* **Sensor Development:**
* A flexible graphene-based capacitive sensor was fabricated on a paper substrate using pencil-drawn interdigitated electrodes (IDEs).
* Ordinary pencils are used to draw conductive graphite electrodes directly onto paper.
* Graphene oxide (GO) serves as the active sensing material.
* Eliminates the need for costly metals, cleanroom facilities, and chemical-intensive fabrication steps.
* **Sensor Characteristics:**
* Lightweight and mechanically flexible.
* Environmentally friendly.
* Cost-effective and well-suited for disposable and large-area sensing applications.
* Exhibits high sensitivity to humidity and moisture, with a response exceeding 1500% at high relative humidity.
* **Applications:**
* Soil moisture sensing.
* Plant drought stress monitoring.
* Human breath monitoring.
* Skin moisture tracking.
* Non-contact proximity sensing.
* Smart diaper wetness detection.
* **Research Support:**
* The work was supported by DST-INSPIRE, the DST Early Career Research Award, and DST-PURSE.
* DST-PURSE provided consumables, chemicals, and manpower for the research.
**Impact Analysis**
**Stakeholder:** Agriculture Sector
**Impact:** Potential for affordable and accessible soil moisture and plant drought stress monitoring, improving crop management and yields.
**Action Required:** Consider adopting this technology to improve agriculture practices.
**Stakeholder:** Healthcare Sector
**Impact:** Potential for low-cost, disposable sensors for human health monitoring, including breath and skin moisture, as well as diaper wetness detection, enhancing patient care and hygiene.
**Action Required:** Evaluate the sensor's applicability in different healthcare settings for enhanced monitoring.
**Stakeholder:** Gauhati University Researchers
**Impact:** Successful development of a novel sensor technology, showcasing their expertise in low-cost sensor fabrication.
**Action Required:** Continue research to refine and expand the applications of this sensor technology.
Key Entities Referenced
Ministry of Science & Technology: The ministry overseeing the research and development of the sensor.
DST-INSPIRE: A funding program that supported the research.
DST Early Career Research Award: A funding program that supported the research.
DST-PURSE: A project that provided resources for the research.
Gauhati University: The university where the research was conducted, specifically the Department of Physics.
Ministry of Science & Technology
Pencil, paper & graphene brought together for
sensors useful for hospital and farms
Posted On: 09 JAN 2026 7:46PM by PIB Delhi
A flexible, low-cost multipurpose pencil on paper sensor developed could carry out activities ranging from
measuring soil moisture, detecting plant drought stress, tracking human breathing patterns, to acting as
smart diaper wetness detector.
Sensors are a part of everyday life today. They are present in phones and smartwatches and required in
hospitals and farms. But most conventional sensors are built on rigid materials, use costly metals like gold
or platinum, and require complex manufacturing processes. This makes them expensive, unscalable, and
hence unsuitable for large-area applications such as agriculture or wearable health monitoring.
Research, carried out by Dr. Hemen Kumar Kalita and his PhD students, Rajnandan Lahkar and Biswajit
Dehingia, at the Department of Physics, Gauhati University, addresses the critical need for low-cost,
flexible, and sustainable sensor technologies for applications in agriculture and healthcare.
The researchers developed a flexible graphene-based capacitive sensor fabricated on a paper substrate
using pencil-drawn interdigitated electrodes (IDEs). Ordinary pencils are used to draw conductive graphite
electrodes directly onto paper, while graphene oxide (GO) serves as the active sensing material. This
approach eliminates the need for costly metals, cleanroom facilities, and chemical-intensive fabrication
steps. The resulting sensor is lightweight, mechanically flexible, environmentally friendly, and extremely
cost-effective, making it well-suited for disposable and large-area sensing applications.The work published in the international peer-reviewed journal ACS Applied Electronic Materials,
demonstrates significant advancement over existing paper-based and flexible sensor technologies. While
earlier sensors often suffer from low sensitivity, high fabrication cost, or single-function operation, the
developed sensor exhibits exceptionally high sensitivity to humidity and moisture, with a response
exceeding 1500% at high relative humidity.
The same sensor has been successfully demonstrated for multiple real-world applications, including soil
moisture sensing, plant drought stress monitoring through transpiration analysis, human breath
monitoring, skin moisture tracking, non-contact proximity sensing, and smart diaper wetness detection.
The ability to integrate such diverse functionalities into a single, low-cost device highlights the novelty
and technological significance of this work.
By integrating paper substrates, pencil-drawn electrodes, and GO, the research demonstrates that high-
performance sensors can be developed using simple, low-cost, and locally adaptable approaches.
This work was supported by DST-INSPIRE, the DST Early Career Research Award, and DST-PURSE.
Furthermore, the DST-PURSE project provided essential laboratory consumables, chemicals, and other
necessary materials required for carrying out the research work under the consumables head. Manpower
supported under the DST-PURSE project was actively involved in this work and contributed to the
execution of the research.
Publication Link: https://doi.org/10.1021/acsaelm.5c00315
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