Bayesian Inference-enabled Precise Optical Wavelength Estimation using Transition Metal Dichalcogenide Thin Films
Davoud Hejazi, Shuangjun Liu, Sarah Ostadabbas, and Swastik Kar

TL;DR
This paper introduces a Bayesian inference-based system using layered transition metal dichalcogenide thin films for highly accurate optical wavelength estimation across a broad spectral range, with minimal calibration needs.
Contribution
It presents a novel cyber-physical system employing low-cost TMD thin films and Bayesian inference for precise, adaptable wavelength estimation in optical sensing.
Findings
Achieved 1% estimation error over 99% of the spectral range.
Demonstrated high accuracy with only two filters using step-wise elimination.
Provided a statistical method for optimal filter material selection.
Abstract
Despite its ability to draw precise inferences from large and complex datasets, the use of data analytics in the field of condensed matter and materials sciences -- where vast quantities of complex metrology data are regularly generated -- has remained surprisingly limited. Specifically, such approaches could dramatically reduce the engineering complexities of devices that directly exploit the physical properties of materials. Here, we present a cyber-physical system for accurately estimating the wavelength of any monochromatic light in the range of 325-1100nm, by applying Bayesian inference on the optical transmittance data from a few low-cost, easy-to-fabricate thin film "filters" of layered transition metal dichalcogenides (TMDs) such as MoS2 and WS2. Wavelengths of tested monochromatic light could be estimated with only 1% estimation error over 99% of the stated spectral range, with…
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Taxonomy
TopicsChalcogenide Semiconductor Thin Films · 2D Materials and Applications · Quantum Dots Synthesis And Properties
