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Updated: May 18, 2026

Angle-resolved Photoemission Spectroscopy At Ultra-low Temperatures
Published on: October 9, 2012
Crystallographic Anisotropies in α-SnWO4 Photoelectrodes and Their Effects on Electronic Properties and
Ronen Gottesman1,2, Erwin Fernandez3, Rene Schwiddessen4
1The Institute of Chemistry, The Hebrew University of Jerusalem, Edmond J. Safra Campus, Givat Ram, Jerusalem9190401, Israel.
Abstract:
Multinary metal oxide photoelectrodes remain fundamentally limited by poor charge transport despite theoretical promise for solar fuel production. α-SnWO4 exemplifies this challenge: while density functional theory predicts highly anisotropic charge transport with orientation-dependent band-edge positions, synthetic barriers to achieving phase-pure films with controlled crystallographic orientation have prevented its exploitation. Here, we demonstrate that rapid thermal processing (RTP) of pulsed-laser-deposited films overcomes these synthetic limitations, creating percolation networks of co-oriented grains. Multiscale characterization reveals that aligned crystallographic orientations produce well-aligned band edges, lowering contact potential difference by 0.35 eV and enhancing the local conductivity by more than 2 orders of magnitude compared to furnace heating (FH). These results directly correlate enhanced transport properties with previously reported improved photoelectrochemical performance of the RTP-treated films compared to those treated by FH and suggest a microscopic mechanism for this improvement. Our findings establish that controlling grain orientation connectivity, not simply grain size, provides a scalable pathway for exploiting anisotropic transport in multinary metal oxide photoelectrodes, directly linking the microstructure to the enhanced charge transport required for practical solar fuel devices.
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