Repairing and Preventing Photooxidation of Few-Layer Black Phosphorus with β-Carotene
Metadatos
Mostrar el registro completo del ítemAutor
Singh, Mandeep; Ingle, Aviraj; González Garnica, Ana Isabel; Mariathomas, Pyria; Ramanathan, Rajesh; Taylor, Patrick D.; Christofferson, Andrew J.; Spencer, Michelle J. S.; Low, Mei Xian; Ahmed, Taimur; Walia, Sumeet; Trasobares, Susana; Manzorro, Ramón; Calvino, José J; Orte Gutiérrez, Ángel; Domínguez Vera, José Manuel; Bansal, VipulEditorial
American Chemical Society
Fecha
2023-04-24Referencia bibliográfica
Published version: Singh, Mandeep et al. Repairing and Preventing Photooxidation of Few-Layer Black Phosphorus with β-Carotene. ACS Nano 2023, 17, 9, 8083–8097. https://doi.org/10.1021/acsnano.2c10232
Patrocinador
MCIN/AEI/10.13039/501100011033 FEDER PID2019-111461GB-I00 and PID2020-113006-RB-I00; Australian Research Council (DP230101650, DP220100020); European Union’s Horizon 2020 823717−ESTEEM3; Australian Government’s National Collaborative Research Infrastructure Strategy (NCRIS); Universidad de GranadaResumen
Few-layer black phosphorus (FLBP), a technologically important 2D material, faces a major hurdle to consumer applications: spontaneous degradation under ambient conditions. Blocking the direct exposure of FLBP to the environment has remained the key strategy to enhance its stability, but this can also limit its utility. In this paper, a more ambitious approach to handling FLBP is reported where not only is FLBP oxidation blocked, but it is also repaired postoxidation. Our approach, inspired by nature, employs the antioxidant molecule β-carotene that protects plants against photooxidative damages to act as a protecting and repairing agent for FLBP. The mechanistic role of β-carotene is established by a suite of spectro-microscopy techniques, in combination with computational studies and biochemical assays. Transconductance studies on FLBP-based field effect transistor (FET) devices further affirm the protective and reparative effects of β-carotene. The outcomes indicate the potential for deploying a plethora of natural antioxidant molecules to enhance the stability of other environmentally sensitive inorganic nanomaterials and expedite their translation for technological and consumer applications.





