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March 3, 2026npj Advanced Manufacturing6 citationsOpen Access

Fully biodegradable printed electronic sensors based on biomass-derived graphene inks and agripapers

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LCLindsay E. ChaneyJHJanan HuiHYHaoyang You

Key Points

  • Biodegradable printed electronic sensors show a relative resistance change of 2.6 over a humidity range of 35–85% RH.
  • These sensors achieve response and recovery times of approximately 1 second and 4 seconds, respectively, under testing conditions.
  • Assessment using agripaper substrates and graphene inks sourced from biomass ensures high environmental compatibility and sustainability.
  • This approach supports a circular bioeconomy by utilizing renewable materials, potentially reducing electronic waste.

Abstract

While printed electronic sensors present significant opportunities for the Internet of Things (IoT), industrial-scale production of these devices also raises numerous environmental concerns, including electronic waste generation and critical mineral depletion. Here, we circumvent these issues by demonstrating high-performance biodegradable printed electronic sensors based exclusively on agripaper substrates and graphene inks sourced from biomass. The agripaper substrate is produced from miscanthus and hemp, which are hardy, drought-tolerant agricultural crops. Meanwhile, the sensing layer is composed of cellulose nanocrystals derived from miscanthus, and graphene nanoplatelets derived from hardwood biochar. These plant-based printing materials are renewable, biodegradable, and readily processable at scale. The resulting printed electronic sensors exhibit superlative humidity sensitivity, showing a relative resistance change of 2.6 over a humidity range of 35–85% RH with response and recovery times of ~1 second and ~4 seconds, respectively. These sensors also perform well under humidity cycling and possess minimal confounding temperature dependence, outperforming traditional devices based on plastic substrates and metallic inks. By utilizing biomass for all raw materials, this additive manufacturing methodology is sustainable, minimizes supply chain risks, and provides an enabling step towards a circular bioeconomy.

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Cite This Study

Chaney et al. (2026) studied this question.

synapsesocial.com/papers/69a75d05c6e9836116a26682https://doi.org/10.1038/s44334-025-00063-8
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