Nondestructive Integration of Laser‐Induced Biomass Graphene for Sustainable Wearable Electronics

M Minkun Cai (School of Chemistry and Chemical Engineering State Key Laboratory of Pulp and Paper Engineering South China University of Technology Guangzhou China) J Jiaoya Huang (School of Chemistry and Chemical Engineering State Key Laboratory of Pulp and Paper Engineering South China University of Technology Guangzhou China) P Pang Zhu (School of Chemistry and Chemical Engineering State Key Laboratory of Pulp and Paper Engineering South China University of Technology Guangzhou China) Q Qibin Xia (School of Chemistry and Chemical Engineering State Key Laboratory of Pulp and Paper Engineering South China University of Technology Guangzhou China) X Xueqing Qiu (Guangdong Provincial Key Laboratory of Plant Resources Biorefinery, School of Chemical Engineering and Light Industry) Y Yong Qian (School of Chemistry and Chemical Engineering, Research Institute of Materials Science)

Abstract

ABSTRACT Laser‐induced graphene (LIG) circuits hold significant promise for wearable electronics due to their excellent chemical stability and biocompatibility. However, fossil‐derived aromatic precursors are challenged by limited availability and environmental burden, and high energy laser processing damages substrates and hinders separation. Here, we propose a nondestructive strategy that integrates rapid heat dissipation and stress‐free pattern transfer based on a botanical lignin‐based precursor. Guided by the ReaxFF molecular dynamics simulation on the decomposition and reconstruction processes, lignin‐derived LIG circuits with high‐ordered structure and sheet resistance as low as 15 Ω sq −1 are obtained, and allow for complete integration onto a wide range of polymers, including those with ultrathin (20 µm), low‐modulus (69 kPa), and low‐melting‐point (84°C) profiles previously inaccessible. Leveraging the above platforms, six flexible devices irradiating light, electron, and thermal sensing applications are constructed, demonstrating its universality. Last but not the least, lignin offers high biosynthetic yield, closed‐loop recyclability, and excellent biodegradability, achieving an approximately 90% reduction in environmental footprint compared to fossil‐based alternatives.

Article Details

Volume / Issue Vol. 1, Issue 1
Published August 13, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (6)

M

Minkun Cai

School of Chemistry and Chemical Engineering State Key Laboratory of Pulp and Paper Engineering South China University of Technology Guangzhou China

J

Jiaoya Huang

School of Chemistry and Chemical Engineering State Key Laboratory of Pulp and Paper Engineering South China University of Technology Guangzhou China

P

Pang Zhu

School of Chemistry and Chemical Engineering State Key Laboratory of Pulp and Paper Engineering South China University of Technology Guangzhou China

Q

Qibin Xia

School of Chemistry and Chemical Engineering State Key Laboratory of Pulp and Paper Engineering South China University of Technology Guangzhou China

X

Xueqing Qiu

Guangdong Provincial Key Laboratory of Plant Resources Biorefinery, School of Chemical Engineering and Light Industry

Y

Yong Qian

School of Chemistry and Chemical Engineering, Research Institute of Materials Science