Publication:

Electrochemical redox probes to map light-modulated band edge shifts of nano-TiO2 thin film electrodes in aqueous solutions

 
cris.virtual.department#PLACEHOLDER_PARENT_METADATA_VALUE#
cris.virtual.department#PLACEHOLDER_PARENT_METADATA_VALUE#
cris.virtual.orcid0000-0003-0099-2313
cris.virtual.orcid0000-0003-4115-0075
cris.virtualsource.departmentb9311d30-0434-46f9-bbe0-f1c7128de695
cris.virtualsource.department319bcb05-51e0-4ebd-82cd-03314b82dce9
cris.virtualsource.orcidb9311d30-0434-46f9-bbe0-f1c7128de695
cris.virtualsource.orcid319bcb05-51e0-4ebd-82cd-03314b82dce9
dc.contributor.authorKhurana, Divyansh
dc.contributor.authorSebert, Cyrille
dc.contributor.authorVereecken, Philippe
dc.date.accessioned2026-03-02T14:09:17Z
dc.date.available2026-03-02T14:09:17Z
dc.date.createdwos2026-02-21
dc.date.issued2026
dc.description.abstractNano-semiconductor electrodes are employed for light harvesting applications in (photo-)electrochemical conversion reactions and dye-sensitized solar cells. Accurate determination of their band edge energetic positions is central to their efficacy for isoenergetic charge transfer to the electrolyte. Yet, conventional methods fail for nano-dimensional semiconductor electrodes due to full depletion and extremely small potential-independent space charge widths. In this regard, a new approach was demonstrated on thin film nano-TiO2 electrodes where the current-potential (i-U) characteristics in high and low work function redox probes were interpreted to infer band edge positions in darkness. The methodology is now extended for nano-TiO2 band edge interpretation to illuminated interfaces. Using compact 30 nm TiO2 thin films of both anatase and amorphous phases, we analyze open-circuit potentials and onset potentials in darkness and illumination across varying pH conditions to infer band edge shifts. We also examine temperature rise due to solution heating under illumination from the diffusion-limited currents in the i-U characteristics. Additionally, signatures from surface states in the i-U characteristics are identified, their densities estimated, and their implications discussed. The findings are consolidated through energy band diagrams, offering a comprehensive view of the fully depleted nano-semiconductor/electrolyte interface under operational conditions.
dc.description.wosFundingTextThe authors acknowledge funding from VLAIO (Flanders Innovation and Entrepreneurship) under the Flanders Industry Innovation Moon-shot program for the SYN-CAT (HBC.2020.2614) project.
dc.identifier.doi10.1016/j.electacta.2026.148395
dc.identifier.issn0013-4686
dc.identifier.urihttps://imec-publications.be/handle/20.500.12860/58807
dc.language.isoeng
dc.provenance.editstepusergreet.vanhoof@imec.be
dc.publisherPERGAMON-ELSEVIER SCIENCE LTD
dc.source.beginpage148395
dc.source.issue10 April
dc.source.journalELECTROCHIMICA ACTA
dc.source.numberofpages14
dc.source.volume555
dc.subject.keywordsSURFACE-STATES
dc.subject.keywordsSEMICONDUCTOR ELECTRODES
dc.subject.keywordsTIO2 ELECTRODES
dc.subject.keywordsOXIDATION
dc.subject.keywordsWATER
dc.subject.keywordsPHOTOOXIDATION
dc.subject.keywordsMECHANISM
dc.title

Electrochemical redox probes to map light-modulated band edge shifts of nano-TiO2 thin film electrodes in aqueous solutions

dc.typeJournal article
dspace.entity.typePublication
imec.internal.crawledAt2026-02-23
imec.internal.sourcecrawler
Files
Publication available in collections: