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Efficient separation of photogenerated charges at the surface of photocatalysts is vital for achieving high photocatalytic activity. Here, a Bi/BiNbOCl heterostructure piezo-photocatalyst with an amorphous/crystalline interface (acBi/BNC) is prepared by in situ reduction using BiNbOCl as a self-sacrificial template. This ingenious design synergistically utilizes the advantages of the amorphous/crystalline interface structure, localized surface plasmon resonance effect, and piezoelectric field. The formation of amorphous/crystalline interfaces induces the generation of oxygen vacancies, and subsequently lattice distortions, thus improving the piezoelectric properties. Theoretical and experimental results demonstrate that the combination of piezoelectric field and amorphous/crystalline interface promotes the effective separation and migration of photogenerated charges between the bulk and surface of the catalysts. Under simultaneous light and ultrasound, the optimal heterostructure (acBi/BNC-3) exhibit superior photodegradation efficiency of tetracycline reached 80% within 5 min, and the reaction rate (2.78 × 10 min) is 7.8 and 5.4 times that of pure BiNbOCl (BNC) and crystalline Bi/BiNbOCl (cBi/BNC), respectively. Furthermore, the piezo-photocatalytic tetracycline degradation efficiency surpasses those under individual photocatalysis and piezocatalysis conditions. This work provides a novel rational design to improve the spatial charge separation of Bi-based catalysts and prepare high-performance piezo-photocatalysts via interface engineering.
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http://dx.doi.org/10.1002/smll.202500758 | DOI Listing |
J Colloid Interface Sci
September 2025
Hebei Provincial Key Laboratory of Green Chemical Technology and High Efficient Energy Saving, Tianjin Key Laboratory of Chemical Process Safety, School of Chemical Engineering and Technology, Hebei University of Technology, Tianjin 300130, China. Electronic address:
Enhancing anodic hydroxyl (OH) coverage and suppressing leaching of active metal sites are essential for developing efficient and durable alkaline oxygen evolution reaction (OER) electrocatalysts. Herein, we propose amorphous cerium oxide (CeO)-mediated amorphous/crystalline heterointerface engineering to enhance OH coverage and leaching resistance in CeO/Mo-NiS for high-performance OER. CeO with an oxyphilic surface facilitates OH adsorption, promoting in situ reconstruction of NiS into nickel hydroxyl oxide (NiOOH) with significantly enhanced OH coverage and thereby accelerating OER kinetics.
View Article and Find Full Text PDFEnviron Res
August 2025
National and Local Joint Engineering Research Center for Lithium-ion Batteries and Materials Preparation Technology, Key Laboratory of Advanced Battery Materials of Yunnan Province, Faculty of Metallurgical and Energy Engineering, Kunming University of Science and Technology, Kunming, 650093, China.
Wastewater containing Cu and Cd poses a huge threat to the surrounding environment and human safety. To treat such wastewater, this study developed a novel composite adsorbent (LZT@SA) from thermally activated LZT and sodium alginate (SA). LZT was thermally activated at 850 °C (LZT).
View Article and Find Full Text PDFChemSusChem
August 2025
Key Laboratory for Photonic and Electronic Bandgap Materials, Ministry of Education, School of Physics and Electronic Engineering, Harbin Normal University, Harbin, 150025, China.
The advancement of inexpensive and productive bifunctional electrocatalysts for overall water splitting is essential for achieving hydrogen energy production. Herein, a hierarchical heterostructure catalyst composed of amorphous FeNi(OH) nanosheets supported on a crystalline NiS scaffold, which is anchored to nickel foam through a combined hydrothermal-electrodeposition strategy, is reported. The crystalline NiS framework exhibits metal-like electrical conductivity and optimized hydrogen adsorption kinetics, while the amorphous FeNi(OH) overlayer offers abundant adaptive active sites that enhance oxygen evolution reaction (OER) activity.
View Article and Find Full Text PDFChem Sci
August 2025
School of Materials Science and Engineering, Shaanxi Normal University Xi'an 710119 P. R. China
Developing non-precious metal electrocatalysts with high activity and high chlorine (Cl) corrosion resistance at industrial current densities remains challenging for large-scale seawater splitting. To address this problem, we rationally design an amorphous cobalt-iron layered double hydroxide with intercalated borate anions (BO(OH) -CoFe-LDH) grown over crystalline sulfurized cobalt molybdate with a sulfate-rich surface (SO -CoMoO) nanohybrid (BO(OH) -CoFe-LDH/SO -CoMoO). Through sulfidation and amorphous/crystalline interface construction, multiple synergistic effects are induced, effectively modulating the electronic structure, increasing the number of accessible active sites, and promoting electron transfer.
View Article and Find Full Text PDFAngew Chem Int Ed Engl
September 2025
Shaanxi Key Laboratory of Macromolecular Science and Technology, School of Chemistry and Chemical Engineering, Northwestern Polytechnical University, Xi'an, Shaanxi, 710072, P.R. China.
Conventional polymers exhibit low intrinsic thermal conductivity (λ) of 0.1∼0.5 W/(m·K) due to disordered chain arrangements, failing to meet the heat dissipation demands of high-power flexible electronic devices.
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