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Updated: Sep 25, 2026

Preparation of Polyoxometalate-based Photo-responsive Membranes for the Photo-activation of Manganese Oxide Catalysts
Published on: August 7, 2018
Wavelength- and Humidity-Controlled Reversible Photoconductivity Switching in a Novel Hybrid Polyoxoniobate
Wen-Bin Pan1, Shu-Lin Huang1, Cai Sun1
1State Key Laboratory of Chemistry for NBC Hazards Protection, Fujian Provincial Key Laboratory of Advanced Inorganic Oxygenated Materials, College of Chemistry, Fuzhou University, Fuzhou, Fujian, China.
Abstract:
Reversing the sign of photoconductivity in a single material has long been a formidable challenge, yet achieving this goal could open the door to a new generation of adaptive optoelectronics. Here, we report the first case of an inorganic-organic hybrid polyoxometalate (POM), [Ni(BTP)]4[Nb10O26]·35H2O (1, BTP = Bis-tris propane), capable of fully reversible switching between positive photoconductivity (PPC) and negative photoconductivity (NPC). This switching is dually controlled by excitation wavelength and relative humidity. Short-wavelength excitation and low humidity give conventional PPC, whereas long-wavelength excitation and high humidity induce NPC. This anomalous polarity inversion stems from the competition between two coexisting mechanisms: one is the photoelectric effect, which generates charge carriers within the POM; the other is the light-induced water desorption process, which suppresses the electron donation from adsorbed H2O molecules, thereby reducing the carrier density. Resonant microcantilever measurements directly confirm the light-induced water desorption process, and systematic wavelength/humidity-dependent photoconductivity mapping reveals a well-defined phase boundary that governs reversible PPC-NPC interconversion. This work represents a rare polarity-switchable photoconductive material, expanding POM applications in optoelectronics.
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