Triethylamine Gas Sensors Based on BiOBr Microflowers Decorated with ZnO Nanocrystals
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Wangwang Liu | Xiaoli Xu | Shengyi Wang | Xiaoping Wang | F. Yuan | N. Ma | Shuyi Ma | Hongtao Jiang
[1] Z. Xia,et al. One-pot synthesis of S-scheme WO3/BiOBr heterojunction nanoflowers enriched with oxygen vacancies for enhanced tetracycline photodegradation , 2022, Separation and Purification Technology.
[2] Xiaoqiu Chen,et al. Humidity-Tolerant Chemiresistive Gas Sensors Based on Hydrophobic CeO2/SnO2 Heterostructure Films. , 2022, ACS applied materials & interfaces.
[3] Shi Wang,et al. Sensitivity enhancement of In2O3/ZrO2 composite based acetone gas sensor: a promising collaborative approach of ZrO2 as the heterojunction and dopant for in-situ grown octahedron-like particles , 2022, Sensors and Actuators B: Chemical.
[4] Yan Xu,et al. Highly sensitive and selective triethylamine gas sensor based on hierarchical radial CeO2/ZnO n-n heterojunction , 2022, Sensors and Actuators B: Chemical.
[5] Wenyuan Gao,et al. Superior acetone sensor based on hetero-interface of SnSe2/SnO2 quasi core shell nanoparticles for previewing diabetes. , 2022, Journal of colloid and interface science.
[6] Jianliang Cao,et al. Boosting TEA sensing performance of ZnO porous hollow spheres via in situ construction of ZnS-ZnO heterojunction , 2022, Sensors and Actuators B: Chemical.
[7] H. Zhang,et al. CuO-sensitized amorphous ZnSnO3 hollow-rounded cubes for highly sensitive and selective H2S gas sensors , 2022, Sensors and Actuators B: Chemical.
[8] Jiayue Xu,et al. Step-Scheme Photocatalyst of CsPbBr3 Quantum Dots/BiOBr Nanosheets for Efficient CO2 Photoreduction. , 2022, Inorganic chemistry.
[9] Fanli Meng,et al. Preparation of SnO2/SiO2 nanocomposites by sol-gel method for enhancing the gas sensing performance to triethylamine , 2022, Journal of Alloys and Compounds.
[10] Wangwang Liu,et al. Triethylamine Sensors Based on Nanoscale Porous Carbon Nanocages Originated from Zeolitic Imidazolate Framework Derivatives , 2022, ACS Applied Nano Materials.
[11] Jingyu Sun,et al. Enhancement of bacterial inactivation of BiOBr nanoflower through oxygen vacancy engineering , 2022, Applied Surface Science.
[12] Y. Cai,et al. Design a SnWO4 coral-like nanostructure for triethylamine (TEA) sensing , 2022, Vacuum.
[13] L. Luo,et al. Tailoring of Visible Light Driven Photocatalytic Activities of Flower‐Like BiOBr Microparticles Towards Wastewater Purification Application , 2021, Advanced Materials Interfaces.
[14] Jiaguo Yu,et al. Semiconductor Gas Sensor for Triethylamine Detection. , 2021, Small.
[15] M. Shkir,et al. Enhanced Triethylamine Gas Sensing and Photocatalytic Performance of Sn doped NiO (SNO) nanoparticles , 2021, Inorganic Chemistry Communications.
[16] S. S. Chougule,et al. High performance langasite based SAW NO2 gas sensor using 2D g-C3N4@TiO2 hybrid nanocomposite. , 2021, Journal of hazardous materials.
[17] Y. Chen,et al. Design of MoS2/ZnO bridge-like hetero-nanostructures to boost triethylamine (TEA) sensing , 2021, Vacuum.
[18] Li Shen,et al. Fabrication of ZnSn(OH)/ZnO/BiOBr with high photocatalytic efficiency in removal of various organic pollutants , 2021, Journal of Alloys and Compounds.
[19] Yude Wang,et al. Novel Al-doped CdIn2O4 Nanofibers Based Gas Sensor for Enhanced Low-concentration N-butanol Sensing , 2021, Sensors and Actuators B: Chemical.
[20] Qiming Liu,et al. Visible light photocatalytic degradation of sulfanilamide enhanced by Mo doping of BiOBr nanoflowers. , 2021, Journal of hazardous materials.
[21] Yuchi Zhang,et al. Hierarchical kiwifruit-like ZnO/ZnFe2O4 heterostructure for high-sensitive triethylamine gaseous sensor , 2021 .
[22] Huajun Sun,et al. Synergetic piezo-photocatalytic effect in a Bi2MoO6/BiOBr composite for decomposing organic pollutants , 2021 .
[23] Qi Zhang,et al. Flower-like In2O3/ZnO heterostructure with accelerated multi-orientation electron transport mechanism for superior triethylamine detection , 2021 .
[24] Jiaguo Yu,et al. 0D/2D CdS/ZnO composite with n-n heterojunction for efficient detection of triethylamine. , 2021, Journal of colloid and interface science.
[25] Fanli Meng,et al. Perovskite-structured LaCoO3 modified ZnO gas sensor and investigation on its gas sensing mechanism by first principle , 2021 .
[26] Wangwang Liu,et al. An excellent triethylamine (TEA) sensor based on unique hierarchical MoS2/ZnO composites composed of porous microspheres and nanosheets , 2021 .
[27] Lu-ping Xu,et al. In-situ generated TiO2/α-Fe2O3 heterojunction arrays for batch manufacturing of conductometric acetone gas sensors , 2021 .
[28] Yang Qu,et al. Recent advances in BiOBr-based photocatalysts for environmental remediation , 2021 .
[29] Cecilia A. Zito,et al. Porous ZnSnO3 nanocubes as a triethylamine sensor , 2021, Sensors and Actuators B: Chemical.
[30] Fei Yu,et al. Performance degradation mechanism of the light-activated room temperature NO2 gas sensor based on Ag-ZnO nanoparticles , 2021, Applied Surface Science.
[31] Fanli Meng,et al. MoS2-Templated Porous Hollow MoO3 Microspheres for Highly Selective Ammonia Sensing via a Lewis Acid-Base Interaction , 2021, IEEE Transactions on Industrial Electronics.
[32] Changmin Hou,et al. Oxygen vacancies enhancing acetone-sensing performance , 2020 .
[33] P. He,et al. In situ self-growing 3D hierarchical BiOBr/BiOIO3 Z-scheme heterojunction with rich oxygen vacancies and iodine ions as carriers transfer dual-channels for enhanced photocatalytic activity , 2020 .
[34] Dongxue Wang,et al. Novel malonic acid assisted synthesized porous Fe2O3 microspheres for ultra-fast response and recovery toward triethylamine , 2020 .
[35] P. Srinivasan,et al. UV-activated ZnO/CdO n-n isotype heterostructure as breath sensor , 2020 .
[36] Shengwei Deng,et al. From Relative Hydrophobic and Triethylamine (TEA) Adsorption Preferred Core-shell Heterostructure to Humidity Resistance and TEA Highly Selective Sensing Prototype: An Alternative Approach to Improve the Sensing Characteristics of TEA Sensors. , 2020, ACS sensors.
[37] Dianqing Li,et al. Ultra-sensitive ethanol gas sensors based on nanosheet-assembled hierarchical ZnO-In2O3 heterostructures. , 2020, Journal of hazardous materials.
[38] S. Navale,et al. C2H5OH sensing properties of solid-state mediated BiOBr nanoplates , 2019 .
[39] R. Liu,et al. Regulating the Sensitivity and Operating Temperatures by Morphology Engineering of 2D ZnO Nanostructures and 3D ZnO Microstructures for the Detection of Organic-Amines , 2019, ACS Applied Nano Materials.
[40] G. Lu,et al. Rational design of 3D inverse opal heterogeneous composite microspheres as excellent visible-light-induced NO2 sensors at room temperature. , 2018, Nanoscale.
[41] Bo Liu,et al. Porous α-Fe2O3 gas sensor with instantaneous attenuated response toward triethylamine and its reaction kinetics , 2022 .
[42] Dunjun Chen,et al. Light-activated ultrasensitive NO2 gas sensor based on heterojunctions of CuO nanospheres/MoS2 nanosheets at room temperature , 2022, Sensors and Actuators B: Chemical.
[43] Guofeng Pan,et al. Metal-organic framework-derived ZnO decorated with CuO for ultra-high response and selectivity H2S gas sensor , 2022, Sensors and Actuators B: Chemical.
[44] Shen-ming Chen,et al. High-performance catalytic strips assembled with BiOBr Nano-rose architectures for electrochemical and SERS detection of theophylline , 2021 .
[45] G. Lu,et al. Flexible resistive NO2 gas sensor of three-dimensional crumpled MXene Ti3C2Tx/ZnO spheres for room temperature application , 2021 .
[46] Zhenyu Feng,et al. Self-accelerating photocharge separation in BiOBr ultrathin nanosheets for boosting photoreversible color switching , 2022 .
[47] Saisai Zhang,et al. Preparation and TEA gas sensing properties of Pt-modified honeycomb-like porous SnO2 nanosheets , 2022, Materials Research Bulletin.