98%
921
2 minutes
20
In view of developing photoelectrosynthetic cells which are able to store solar energy in chemical bonds, water splitting is usually the reaction of choice when targeting hydrogen production. However, alternative approaches can be considered, aimed at substituting the anodic reaction of water oxidation with more commercially capitalizable oxidations. Among them, the production of bromine from bromide ions was investigated long back in the 1980s by Texas Instruments. Herein we present optimized perylene-diimide (PDI)-sensitized antimony-doped tin oxide (ATO) photoanodes enabling the photoinduced HBr splitting with >4 mA/cm photocurrent densities under 0.1 W/cm AM1.5G illumination and 91 ± 3% faradaic efficiencies for bromine production. These remarkable results, among the best currently reported for the photoelectrochemical Br oxidation by dye sensitized photoanodes, are strongly related to the occupancy extent of ATO's intragap (IG) states, generated upon Sb-doping, as demonstrated by comparing their performances with PDI-sensitized analogues on both undoped SnO- and TiO-passivated ATO scaffolds by means of (spectro)electrochemistry and electrochemical impedance spectroscopy. The architecture of the ATO-PDI photoanodic assembly was further modified via the introduction of a molecular iridium-based water oxidation catalyst, thus proving the versatility of the proposed hybrid interfaces as photoanodic platforms for photoinduced oxidations in PEC devices.
Download full-text PDF |
Source |
---|---|
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11627162 | PMC |
http://dx.doi.org/10.1021/acsami.3c18020 | DOI Listing |
ACS Appl Mater Interfaces
July 2025
State Key Laboratory of Flexible Electronics (LoFE) & Jiangsu Key Laboratory for Biosensors, Institute of Advanced Materials (IAM), Jiangsu National Synergetic Innovation Center for Advanced Materials (SICAM), Nanjing University of Posts and Telecommunications, Nanjing 210023, P. R. China.
Plasmonic nanostructures with open intraparticle nanogaps are essential for concentrating the electromagnetic near-field, enabling reliable, label-free surface-enhanced Raman scattering (SERS) detection. However, precise engineering of such nanostructures in a simple and general way for optimized near-field focusing remains challenging. Here, we present a facile synthetic strategy for fabricating frame-like AuAg nanononamers (NNs) with tunable internal hotspots for single-particle SERS applications.
View Article and Find Full Text PDFInorg Chem
March 2025
Hebei Key Laboratory of Photoelectric Control on Surface and Interface, College of Science, Hebei University of Science and Technology, Shijiazhuang 050018, China.
The electronic doping of colloidal semiconductor nanocrystals presents significant potential for future device concepts in optoelectronic and spin-based technologies. Ag is gaining recognition as a novel electronic dopant in II-VI nanocrystals as it creates intragap electronic states that participate in the recombination process of photogenerated carriers within the host materials. Herein, we report the synthesis of a series of Ag-doped II-VI quantum dots (QDs) of varying sizes via a low-temperature cation exchange strategy.
View Article and Find Full Text PDFWe propose a physical mechanism allowing topological excitations with the same Bloch momentum belonging to distinct gaps to be resonant switched. This offers an opportunity to observe both intra-gap and inter-gap resonant edge-state switching. Increasing modulation depth significantly accelerates the resonant switching, while frequency de-tuning inhibits the switching.
View Article and Find Full Text PDFNano Res
September 2024
Department of Chemistry and Biochemistry, The Ohio State University, Columbus, Ohio, 43210, USA.
Hot spot engineering in plasmonic nanostructures plays a significant role in surface enhanced Raman scattering for bioanalysis and cell imaging. However, creating stable, reproducible, and strong SERS signals remains challenging due to the potential interference from surrounding chemicals and locating SERS-active analytes into hot-spot regions. Herein, we developed a straightforward approach to synthesize intra-gap nanoparticles encapsulating 4-nitrobenzenethiol (4-NBT) as a reporter molecule within these gaps to avoid outside interference.
View Article and Find Full Text PDFBiosensors (Basel)
September 2024
State Key Laboratory for Organic Electronics and Information Displays & Jiangsu Key Laboratory for Biosensors, Institute of Advanced Materials (IAM), Jiangsu National Synergetic Innovation Center for Advanced Materials (SICAM), Nanjing University of Posts and Telecommunications, Nanjing 210023, Chin
Plasmonic intragap nanostructures (PINs) have garnered intensive attention in Raman-related analysis due to their exceptional ability to enhance light-matter interactions. Although diverse synthetic strategies have been employed to create these nanostructures, the emphasis has largely been on PINs with simple configurations, which often fall short in achieving effective near-field focusing. Three-dimensional (3D) complex PINs, distinguished by their intricate networks of internal gaps and voids, are emerging as superior structures for effective light trapping.
View Article and Find Full Text PDF