Strain Engineering of 2D-C3N5 Monolayer and its Application in Overall Water-Splitting: A Hybrid Density Functional Study
Shakti Singh, P. Anees, Sharat Chandra, Tapan Ghanty

TL;DR
This study uses hybrid DFT calculations to explore how strain affects the electronic, structural, and optical properties of 2D C3N5, revealing its potential as a water-splitting photocatalyst under specific strain conditions.
Contribution
It provides the first detailed analysis of strain effects on 2D C3N5's properties using HSE06 functional, highlighting its application in water-splitting.
Findings
Biaxial strain more effectively modulates band-gap.
At 20% biaxial strain, structural rearrangement and magnetic moment emerge.
Strain range 12-14% enhances photocatalytic potential.
Abstract
The recent experimental synthesis of 2D graphitic C3N5 has attracted lot of interests in its electronic and optical properties and its comparison with other graphitic C3N4 and C3N3. To this end, we performed DFT calculations using more accurate HSE06 functional and estimated the corresponding electronic properties. From a comparative study of the band structures of C3N3, C3N4, and C3N5, we found that, the electronic band-gap decreases as 3.24 eV (C3N3) > 2.81 eV (C3N4) > 2.19 eV (C3N5) with increase in the number of nitrogen atoms in the unit cell of these graphitic carbon nitrides. Further, the strain dependency of the band structure of 2D g-C3N5 under uniaxial and biaxial strain is performed using the same HSE- 06 functional. We found a systematic decrease of band-gap as strain increases. Out of the two types of strain, the biaxial strain has been found to be more efficient in…
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