Xitan Xu, Haoyu Duan, Yao Lu, Yuchen Zhang, Ziyang Zheng, Baohua Jia, Qiang Wu, Jingjun Xu
Terahertz (THz) metasensors are promising platforms for quantitative biomolecular fingerprint identification in physical, chemical, and biomedical applications. However, conventional free-space THz configurations are limited by their large size and susceptibility to external disturbances, hindering the development of compact and portable devices. Recent advances in on-chip THz metasensors harness miniaturization, yet existing implementations primarily focus on qualitative detection of single molecule types, lacking the capability for quantitative, multi-component analysis. Here, we present an on-chip THz metasensor fabricated on a self-supporting 20 μm-thick lithium niobate (LN) wafer, capable of both identification and quantification of multi-component biomolecular mixtures. By patterning a periodic metasurface array directly onto the LN substrate, our design integrates THz generation, molecular interaction, and signal detection into a single 4 mm × 8 mm chip, achieving a five-order-of-magnitude reduction in the size of the THz functional module relative to conventional THz time-domain spectroscopy systems. Leveraging broadband surface-localized THz waves from the metasurface, this chip accurately identifies and quantifies mixtures of four biomolecules with an error below 3.60%. This work advances THz fingerprint sensing by offering a robust and scalable platform as a portable solution for quantitative multi-component biomolecular analysis.