Chemical and Resistive Switching Properties of Elaeodendron buchananii Extract–Carboxymethyl Cellulose Composite: A Potential Active Layer for Biodegradable Memory Devices

Author:

Dlamini Zolile Wiseman1ORCID,Vallabhapurapu Sreedevi2,Nambooze Jennifer3ORCID,Wilhelm Anke3ORCID,Erasmus Elizabeth3,Mogale Refilwe34,Swart Marthinus Rudi3ORCID,Vallabhapurapu Vijaya Srinivasu5,Mamba Bheki6,Setlalentoa Wendy1,Mahule Tebogo Sfiso5,Pellegrini Vanessa de Oliveira Arnoldi7,Cronje Shaun8ORCID,Polikarpov Igor7ORCID

Affiliation:

1. Department of Maths, Science and Technology Education, Central University of Technology, Bloemfontein 9300, South Africa

2. School of Computing, University of South Africa, Florida Park 1710, South Africa

3. Chemistry Department, University of Free State, Nelson Mandela Drive, Bloemfontein 9300, South Africa

4. Rand Water, Chemistry Department, Scientific Services Division, Vereeniging 1939, South Africa

5. Physics Department, University of South Africa, 28 Pioneer Avenue, Florida Park 1710, South Africa

6. Institute for Nanotechnology and Water Sustainability, University of South Africa, 28 Pioneer Avenue, Florida Park 1710, South Africa

7. São Carlos Institute of Physics, University of São Paulo, Jardim Santa Angelina, São Carlos 13560-000, São Paulo, Brazil

8. Physics Department, University of Free State, Nelson Mandela Drive, Bloemfontein 9300, South Africa

Abstract

Biodegradable electronic devices play a crucial role in addressing the escalating issue of electronic waste accumulation, which poses significant environmental threats. In this study, we explore the utilization of a methanol-based extract of the Elaeodendron buchananii plant blended with a carboxymethyl cellulose biopolymer to produce a biodegradable and environmentally friendly functional material for a resistive switching memory system using silver and tungsten electrodes. Our analyses revealed that these two materials chemically interact to generate a perfect composite with near semiconducting optical bandgap (4.01 eV). The resultant device exhibits O-type memory behavior, with a low ON/OFF ratio, strong endurance (≥103 write/erase cycles), and satisfactory (≥103) data retention. Furthermore, through a comprehensive transport mechanism analysis, we observed the formation of traps in the composite that significantly improved conduction in the device. In addition, we established that altering the voltage amplitude modifies the concentration of traps, leading to voltage amplitude-driven multiple resistance states. Overall, our findings underscore the potential of functionalizing polymers that can be functionalized by incorporating plant extracts, resulting in biodegradable and nonvolatile memory devices with promising performance metrics.

Funder

BRICS

Publisher

MDPI AG

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