Investigating the Performance of Lithium-Doped Bismuth Ferrite [BiFe1−xLixO3]-Graphene Nanocomposites as Cathode Catalyst for the Improved Power Output in Microbial Fuel Cells

Author:

Pema Tenzin12,Kumar Ankit3,Tripathi Babita12,Pandit Soumya3ORCID,Chauhan Sunil12ORCID,Singh Satyendra4ORCID,Dikshit Pritam Kumar5ORCID,Mathuriya Abhilasha Singh6,Gupta Piyush Kumar37ORCID,Lahiri Dibyajit8,Singh Ram Chandra12,Anand Jigisha7ORCID,Chaubey Kundan Kumar9ORCID

Affiliation:

1. Nanomaterials Laboratory, Department of Physics, Sharda School of Basic Sciences and Research, Sharda University, Greater Noida 201310, India

2. Centre for Solar Cell and Renewable Energy, Department of Physics, Sharda School of Basic Sciences and Research, Sharda University, Greater Noida 201310, India

3. Biopositive Lab, Department of Life Sciences, Sharda School of Basic Sciences and Research, Sharda University, Greater Noida 201310, India

4. Special Centre for Nanoscience, Jawaharlal Nehru University, New Delhi 110067, India

5. Department of Bio-Technology, Koneru Lakshmaiah Education Foundation, Vaddeswaram 522302, India

6. Ministry of Environment, Forest and Climate Change, Government of India, New Delhi 110003, India

7. Department of Biotechnology, Graphic Era Deemed to be University, Dehradun 248002, India

8. Department of Biotechnology, School of Life Science and Biotechnology, Adamas University, Kolkata 700126, India

9. Division of Research and Innovation, School of Applied and Life Sciences, Uttaranchal University, Dehradun 248007, India

Abstract

In this study, multifunctional lithium-doped bismuth ferrite [BiFe1−xLixO3]-graphene nanocomposites (x = 0.00, 0.02, 0.04, 0.06) were synthesized by a sol-gel and ultrasonication assisted chemical reduction method. X-ray diffraction and FESEM electron microscopy techniques disclosed the nanocomposite phase and nanocrystalline nature of [BiFe1−xLixO3]-graphene nanocomposites. The FESEM images and the EDX elemental mapping revealed the characteristic integration of BiFe1−xLixO3 nanoparticles (with an average size of 95 nm) onto the 2D graphene layers. The Raman spectra of the [BiFe1−xLixO3]-graphene nanocomposites evidenced the BiFe1−xLixO3 and graphene nanostructures in the synthesized nanocomposites. The photocatalytic performances of the synthesized nanocomposites were assessed for ciprofloxacin (CIP) photooxidation under UV-visible light illumination. The photocatalytic efficiencies of [BiFe1−xLixO3]-graphene nanocomposites were measured to be 42%, 47%, 43%, and 10%, for x = 0.00, 0.02, 0.04, 0.06, respectively, within 120 min illumination, whereas the pure BiFeO3 nanoparticles were 21.0%. BiFe1−xLixO3 nanoparticles blended with graphene were explored as cathode material and tested in a microbial fuel cell (MFC). The linear sweep voltammetry (LSV) analysis showed that the high surface area of BiFeO3 was attributed to efficient oxygen reduction reaction (ORR) activity. The increasing loading rates of (0.5–2.5 mg/cm2) [BiFe1−xLixO3]-graphene composite on the cathode surface showed increasing power output, with 2.5 and 2 mg/cm2 achieving the maximum volumetric power density of 8.2 W/m3 and 8.1 W/m3, respectively. The electrochemical impedance spectroscopy (EIS) analysis showed that among the different loading rates used in this study, BiFeO3, with a loading rate of 2.5 mg/cm2, showed the lowest charge transfer resistance (Rct). The study results showed the potential of [BiFe1−xLixO3]-graphene composite as a cost-effective alternative for field-scale MFC applications.

Funder

Science and Engineering Research Board

Sharda University seed grant project

Life Sciences Research Board

Defense Research and Development Organization and Department of Science and Technology

Publisher

MDPI AG

Subject

Physical and Theoretical Chemistry,Catalysis,General Environmental Science

Reference37 articles.

1. A Survey of Photocatalytic Materials for Environmental Remediation;Palmisano;J. Hazard. Mater.,2012

2. Microbial Fuel Cells, a Renewable Energy Technology for Bio-Electricity Generation: A Mini-Review;Obileke;Electrochem. Commun.,2021

3. Microbial Fuel Cells: The Effects of Configurations, Electrolyte Solutions, and Electrode Materials on Power Generation;Li;Appl. Biochem. Biotechnol.,2010

4. Jiang, L.Y., and Li, N. (2017). Membrane-Based Separations in Metallurgy, Elsevier.

5. Liu, Z., Wu, H., Ren, W., and Ye, Z.-G. (2022). Reference Module in Chemistry, Molecular Sciences and Chemical Engineering, Elsevier.

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