Long Duration Persistent Photocurrent in 3 nm Thin Doped Indium Oxide for Integrated Light Sensing and In‐Sensor Neuromorphic Computation

Author:

Mazumder Aishani1,Nguyen Chung Kim1,Aung Thiha1,Low Mei Xian12,Rahman Md. Ataur12,Russo Salvy P.3,Tawfik Sherif Abdulkader4,Wang Shifan5,Bullock James5,Krishnamurthi Vaishnavi1,Syed Nitu16,Ranjan Abhishek7,Zavabeti Ali1,Abidi Irfan H.1,Guo Xiangyang1,Li Yongxiang1,Ahmed Taimur18,Daeneke Torben1,Al‐Hourani Akram1,Balendhran Sivacarendran6,Walia Sumeet1ORCID

Affiliation:

1. School of Engineering RMIT University 124 La Trobe Street Melbourne 3000 Australia

2. Functional Materials and Microsystems Research Group and the Micro Nano Research Facility RMIT University Melbourne 3000 Australia

3. School of Science RMIT University 124 La Trobe Street Melbourne 3000 Australia

4. Institute for Frontier Materials Deakin University Geelong 3216 Australia

5. Department of Electrical and Electronic Engineering The University of Melbourne Parkville Victoria 3010 Australia

6. School of Physics The University of Melbourne Parkville 3010 Australia

7. School of Engineering Sapienza University of Rome Piazzale Aldo Moro, 5 Roma 00185 Italy

8. Pak‐Austria Fachhochschule Institute of Applied Sciences and Technology Haripur 22620 Pakistan

Abstract

AbstractMiniaturization and energy consumption by computational systems remain major challenges to address. Optoelectronics based synaptic and light sensing provide an exciting platform for neuromorphic processing and vision applications offering several advantages. It is highly desirable to achieve single‐element image sensors that allow reception of information and execution of in‐memory computing processes while maintaining memory for much longer durations without the need for frequent electrical or optical rehearsals. In this work, ultra‐thin (<3 nm) doped indium oxide (In2O3) layers are engineered to demonstrate a monolithic two‐terminal ultraviolet (UV) sensing and processing system with long optical state retention operating at 50 mV. This endows features of several conductance states within the persistent photocurrent window that are harnessed to show learning capabilities and significantly reduce the number of rehearsals. The atomically thin sheets are implemented as a focal plane array (FPA) for UV spectrum based proof‐of‐concept vision system capable of pattern recognition and memorization required for imaging and detection applications. This integrated light sensing and memory system is deployed to illustrate capabilities for real‐time, in‐sensor memorization, and recognition tasks. This study provides an important template to engineer miniaturized and low operating voltage neuromorphic platforms across the light spectrum based on application demand.

Funder

Australian Research Council

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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