Structural, Electronic, Optical, and potassium anodic electrochemical characteristics of 2-Dimensional Silicane: A density functional theory investigation
Author | Peng, Qiong |
Author | Rehman, Javed |
Author | Aziz, Saadullah G. |
Author | Laref, Amel |
Author | Albaqami, Munirah D. |
Author | Ghazi Alotabi, Reham |
Author | Elzatahry, Ahmed |
Author | An Dinh, Van |
Author | Shibl, Mohamed F. |
Available date | 2025-10-09T05:10:47Z |
Publication Date | 2023-06-01 |
Publication Name | Journal of Electroanalytical Chemistry |
Identifier | http://dx.doi.org/10.1016/j.jelechem.2023.117442 |
Citation | Peng, Qiong, Javed Rehman, Saadullah G. Aziz, Amel Laref, Munirah D. Albaqami, Reham Ghazi Alotabi, Ahmed Elzatahry, Van An Dinh, and Mohamed F. Shibl. "Structural, Electronic, Optical, and potassium anodic electrochemical characteristics of 2-Dimensional Silicane: A density functional theory investigation." Journal of Electroanalytical Chemistry 938 (2023): 117442. |
ISSN | 15726657 |
Abstract | Two-dimensional (2D) graphene-like materials have attracted tremendous interest due to their remarkable properties in nanoelectronics. To understand and characterize the various physical properties of silicane relevant to optoelectronic and battery applications, various characteristics of 2D silicane Si2H2 are investigated using the density-functional theory. The structure of 2D Si2H2 is disclosed to be stable, which corroborates its experimental feasibility based on the computational outcomes. With absorption coefficients of about 73.08 (104/cm) and 158.86 (104/cm) at 7.63 eV and 7.66 eV, respectively, it is pertinent to optoelectronic devices. 2D silicane is an exemplary K anodic material, owing to its lesser average open-circuit voltage (OCV) (0.23) and superior theoretical capacity (506 mAhg−1). Afterward, we procured the lowest activation barrier (40 meV) for K migration, which implies the swift charge/discharge mechanism for potassium ion batteries (PIBs). Consequently, the current study guides the pathway for energy storage materials in the near future for anodic applications. These concomitant findings reinforce the pertinence of silicane material in solar and K anodic utilizations. |
Sponsor | This contribution was supported by Qatar University High Impact Project QUHI-CAS-21/22-1. This work was also supported by the Scientific Research Fund of the Hunan Provincial Education Department (No. 21B0637). Also, this work was funded by the Researchers Supporting Project Number (RSP- 2021/267) King Saud University, Riyadh, Saudi Arabia. |
Language | en |
Publisher | Elsevier |
Subject | Silicane OCV Energy barrier PIBs Optical performance |
Type | Article |
Volume Number | 938 |
ESSN | 1873-2569 |
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