On-chip nanophotonic broadband wavelength detector with 2D-Electron gas

Author:

Kaushik Vishal1,Rajput Swati1,Srivastav Sulabh1,Singh Lalit1ORCID,Babu Prem1ORCID,Heidari Elham2,Ahmed Moustafa3,Al-Hadeethi Yas3,Dalir Hamed24ORCID,Sorger Volker J.4,Kumar Mukesh15ORCID

Affiliation:

1. Department of Electrical Engineering , Optoelectronic Nanodevice Research Laboratory, Indian Institute of Technology (IIT) Indore , Indore , India

2. Optelligence LLC , Upper Marlboro , Maryland 22302 , USA

3. Physics Department , Faculty of Science, King Abdulaziz University , P.O. Box-80207 , Jeddah , 21589 , Saudi Arabia

4. Department of Electrical and Computer Engineering , George Washington University , Washington , DC 20052 , USA

5. Centre for Advanced Electronics (CAE), Indian Institute of Technology (IIT) Indore , Indore , India

Abstract

Abstract Miniaturized, low-cost wavelength detectors are gaining enormous interest as we step into the new age of photonics. Incompatibility with integrated circuits or complex fabrication requirement in most of the conventionally used filters necessitates the development of a simple, on-chip platform for easy-to-use wavelength detection system. Also, intensity fluctuations hinder precise, noise free detection of spectral information. Here we propose a novel approach of utilizing wavelength sensitive photocurrent across semiconductor heterojunctions to experimentally validate broadband wavelength detection on an on-chip platform with simple fabrication process. The proposed device utilizes linear frequency response of internal photoemission via 2-D electron gas in a ZnO based heterojunction along with a reference junction for coherent common mode rejection. We report sensitivity of 0.96 μA/nm for a broad wavelength-range of 280 nm from 660 to 940 nm. Simple fabrication process, efficient intensity noise cancelation along with heat resistance and radiation hardness of ZnO makes the proposed platform simple, low-cost and efficient alternative for several applications such as optical spectrometers, sensing, and Internet of Things (IOTs).

Publisher

Walter de Gruyter GmbH

Subject

Electrical and Electronic Engineering,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials,Biotechnology

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