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Optimizing g-C 3 $_3$ N 4 $_4$ -Based Acceptor Materials Through Density Functional Theory-Driven Bandgap
Rinki Deka1, Abhispa Saikia1, Dhruba Jyoti Kalita1
1Department of Chemistry, University of Gauhati, Guwahati, India.
Graphitic carbon nitride (g-C3N4) composites with organic molecules show reduced bandgaps for enhanced energy applications. The g-C3N4-4 composite achieved a 2.26 eV bandgap, minimizing electron-hole recombination.
Area of Science:
- Materials Science
- Nanotechnology
- Semiconductor Physics
Background:
- Graphitic carbon nitride (g-C3N4) is a promising nonmetallic semiconductor for energy conversion and storage.
- Its properties include a moderate bandgap, high stability, cost-effectiveness, and suitable band edge positions.
Purpose of the Study:
- To design and investigate composite materials integrating g-C3N4 sheets with various organic moieties.
- To explore bandgap engineering of g-C3N4-based composites for enhanced optoelectronic properties.
Main Methods:
- Synthesis of g-C3N4 composite materials with different organic molecules.
- Characterization of the structural, optical, and electronic properties of the composites.
- Analysis of the bandgap reduction and electron-hole recombination rates.
Main Results:
- Composite materials exhibited a reduced bandgap compared to pristine g-C3N4 (3.65 eV).
- The g-C3N4-4 composite showed the lowest bandgap of 2.26 eV, leading to excellent optical and electronic properties.
- An approximate 90° angle between g-C3N4 sheets and organic moieties minimized electron-hole recombination.
Conclusions:
- Bandgap engineering by incorporating organic moieties is an effective strategy to enhance the optoelectronic activity of g-C3N4.
- The developed composites show potential for advanced energy conversion and storage applications.
- The structural arrangement in composites plays a crucial role in improving charge carrier dynamics.
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