English

A wafer-scale ultrasensitive programmable chiroptical sensor

Optics 2026-01-21 v1

Abstract

Chiroptical enantioselective sensing is gaining traction across various applications. However, intrinsic molecular chiroptical responses are weak, and existing amplification approaches add synthesis, manufacturing, or operational complexity that limits sensitivity, scalability, and dynamic control. Here, we present a fundamentally new sensing paradigm merging adsorption-driven chirality induction with wafer-scale optical transduction in a programmable heterostructure containing twisted aligned carbon nanotubes (CNTs) and phase change materials (PCMs). Chiral molecules adsorb onto CNTs to form chiroptically active composites that are macroscopically assembled by alignment and rotational stacking, yielding large ultraviolet circular dichroism (CD). We resolve molecule concentration and handedness in a single device without lithography, hotspot delivery, or differential protocols, achieving sub-μ\muM sensitivity for CD-silent glucose and chiral amino acids enabled by >105M1>10^5\,\mathrm{M^{-1}} adsorption constants. We validate adsorption using molecular dynamics simulations, reproduce experimental results using chiral transfer matrix simulations, and realize sensor programmability by tuning the PCM layer. This platform enables cost-effective in-situ enantiomer monitoring in aqueous environments.

Keywords

Cite

@article{arxiv.2601.11774,
  title  = {A wafer-scale ultrasensitive programmable chiroptical sensor},
  author = {Haoyu Xie and Jichao Fan and Zarif Ahmad Razin Bhuiyan and Saqlain Raza and Mohammad Mohammadi and Cheng Guo and Yunshan Wang and Jun Liu and Weilu Gao},
  journal= {arXiv preprint arXiv:2601.11774},
  year   = {2026}
}

Comments

40 pages, 15 figures

R2 v1 2026-07-01T09:08:26.787Z