TY - JOUR
T1 - Disentangling surface and bulk properties of Ta3N5 photoanodes
AU - Wolz, Lukas M.
AU - Buyan-Arivjikh, Altantulga
AU - Dushimineza, Jean Felix
AU - Dittloff, Johannes
AU - Wagner, Laura I.
AU - Grötzner, Gabriel
AU - Blänsdorf, Jan Luca
AU - Kuhl, Matthias
AU - Levashov, Sergej
AU - Kühne, Julius
AU - Zhou, Guanda
AU - Matich, Sonja
AU - Santra, Saswati
AU - Streibel, Verena
AU - Munnik, Frans
AU - Müller-Caspary, Knut
AU - Sharp, Ian D.
AU - Müller-Buschbaum, Peter
AU - Eichhorn, Johanna
N1 - Publisher Copyright:
© The Author(s) 2026.
PY - 2026/12
Y1 - 2026/12
N2 - Understanding how material and defect characteristics govern photoelectrochemical performance is essential for developing efficient and stable photoelectrodes. Although bulk properties are often emphasized, surfaces and interfaces can equally determine activity and stability under operation. Here, we use depth-sensitive characterization to disentangle surface and bulk properties of Ta3N5 thin films. By preparing photoelectrodes from TaOx, TaNx, and Ta precursors, we systematically vary shallow and deep-level defect concentrations. Structural, compositional, and optoelectronic analyses show that the surfaces consistently exhibit oxygen enrichment, increased structural disorder, and higher deep-level defect densities than the bulk. However, the specific surface structure and its spatial extent depend strongly on precursor chemistry. Ta3N5 derived from TaOx forms an extended, amorphous, oxide-rich surface with fewer deep-level defects, whereas TaNx and Ta-derived Ta3N5 films exhibit thinner, more crystalline surfaces with increased mid-gap defect densities. A brief hydrofluoric acid treatment removes the disordered surface layer, improving crystallinity and hydrophilicity and enhancing photoelectrochemical performance and stability for ferrocyanide oxidation. These results highlight interfacial and defect engineering as routes toward durable, high-efficiency Ta3N5 photoelectrodes.
AB - Understanding how material and defect characteristics govern photoelectrochemical performance is essential for developing efficient and stable photoelectrodes. Although bulk properties are often emphasized, surfaces and interfaces can equally determine activity and stability under operation. Here, we use depth-sensitive characterization to disentangle surface and bulk properties of Ta3N5 thin films. By preparing photoelectrodes from TaOx, TaNx, and Ta precursors, we systematically vary shallow and deep-level defect concentrations. Structural, compositional, and optoelectronic analyses show that the surfaces consistently exhibit oxygen enrichment, increased structural disorder, and higher deep-level defect densities than the bulk. However, the specific surface structure and its spatial extent depend strongly on precursor chemistry. Ta3N5 derived from TaOx forms an extended, amorphous, oxide-rich surface with fewer deep-level defects, whereas TaNx and Ta-derived Ta3N5 films exhibit thinner, more crystalline surfaces with increased mid-gap defect densities. A brief hydrofluoric acid treatment removes the disordered surface layer, improving crystallinity and hydrophilicity and enhancing photoelectrochemical performance and stability for ferrocyanide oxidation. These results highlight interfacial and defect engineering as routes toward durable, high-efficiency Ta3N5 photoelectrodes.
UR - https://www.scopus.com/pages/publications/105047073907
U2 - 10.1038/s41467-026-76117-y
DO - 10.1038/s41467-026-76117-y
M3 - Article
C2 - 42581320
AN - SCOPUS:105047073907
SN - 2041-1723
VL - 17
JO - Nature Communications
JF - Nature Communications
IS - 1
M1 - 7773
ER -