PDF
Abstract
Aim: Zinc oxide (ZnO) is an n-type semiconductor with a wide bandgap, excellent electron mobility, and stable chemical characteristics, making it potentially applicable in the field of gas sensing. However, conventional ZnO-based gas sensors face challenges such as high operating temperatures and low sensitivity.
Methods: In this paper, we first synthesized ZIF-8 with a rhombic dodecahedron structure using a room-temperature chemical precipitation method. By doping ZIF-8 with cobalt (Co) and exchanging gold ions, followed by calcination in air, we obtained a metal-organic framework (MOF) derived porous Au@Co-ZnO nanostructure.
Results: This nanostructure retained the large specific surface area and porous characteristics of ZIF-8, while its gas sensing performance was significantly enhanced compared to the pure MOF-derived ZnO nanostructure, due to Co doping and gold nanoparticle modification. At an ethanol concentration of 100 ppm, the Au@Co-ZnO sample demonstrated its best performance at 140 °C, with a response value of 205.3. This result was 28.9 times higher compared to the pure ZnO sample, which showed a response value of 7.1 under identical conditions. Additionally, the optimal operating temperature was 40 °C lower than that of the pure ZnO sample (180 °C). Furthermore, the Au@Co-ZnO samples demonstrated good stability and selectivity for ethanol gas.
Conclusion: The proposed MOF-derived porous Au@Co-ZnO nanostructures not only advance the application of MOF-derived materials in gas detection but also offer a novel approach for boosting the gas-sensing performance of other metal oxide materials.
Keywords
Zinc oxide
/
ZIF-8
/
gas sensor
/
ethanol testing
Cite this article
Download citation ▾
Kaiwen Tian, Yukang Fu, Inzimamul Haq, Shuangyang Kuang, Gaojie Xiong, Zeyuan Zhao, Tianyu Zhou, Jun Weng, Xiang Peng, Liwei Xiong.
Fabrication of MOF-derived porous Au@Co-ZnO nanostructures with excellent C2H5OH sensing performance.
Microstructures, 2025, 5(3): 2025041 DOI:10.20517/microstructures.2024.110
| [1] |
Shi Y,Sun X,Wang H.Strategies for improving the sensing performance of In2O3-based gas sensors for ethanol detection.J Alloys Compd2023;963:171190
|
| [2] |
Comini E.Metal oxide nano-crystals for gas sensing.Anal Chim Acta2006;568:28-40
|
| [3] |
Bakker E.Electrochemical sensors.Anal Chem2002;74:2781-800
|
| [4] |
Kim H,Lien DH.Actively variable-spectrum optoelectronics with black phosphorus.Nature2021;596:232-7
|
| [5] |
Ma N,Suematsu K,Shimanoe K.Novel solid electrolyte CO2 gas sensors based on c-Axis-oriented Y-doped La9.66Si5.3B0.7O26.14.ACS Appl Mater Interfaces2020;12:21515-20
|
| [6] |
Hyodo T,Nagae K,Shimizu Y.Effects of catalytic combustion behavior and adsorption/desorption properties on ethanol-sensing characteristics of adsorption/combustion-type gas sensors.J Asian Ceram Soc2021;9:1015-30
|
| [7] |
Mirzaei A,Shahbaz M,Kim HW.Metal oxide semiconductor nanostructure gas sensors with different morphologies.Chemosensors2022;10:289
|
| [8] |
Kgomo MB,Mhlongo GH.Engineering of mesoporous cube-like In2O3 products as ethanol detection platform at low operating temperature: effects of different transition metals as dopant ions.ACS Omega2024;9:6325-38 PMCID:PMC10870419
|
| [9] |
Xin J,Xie L.MOF-derived Al3+-doped Co3O4 nanocomposites for highly n-butanol gas sensing performance at low operating temperature.J Alloys Compd2024;978:173341
|
| [10] |
Ma C,Su H,Wang X.Cu-MOF-derived C-doped CuO/Cu2O hollow nano-octahedrons for room-temperature NO2 sensing at the ppb level.ACS Appl Nano Mater2024;7:3105-15
|
| [11] |
He F,Chen H.Highly sensitive and selective gas sensor based on SnO2/Fe2O3@rGO nanocomposite for detection of formaldehyde.Mater Chem Phys2024;312:128646
|
| [12] |
Yang Q,Liu Y,Wang ZL.Features of the piezo-phototronic effect on optoelectronic devices based on wurtzite semiconductor nanowires.Phys Chem Chem Phys2014;16:2790-800
|
| [13] |
Li L,Wang R.Ferroelectricity-induced performance enhancement of V-doped ZnO/Si photodetector by direct energy band modulation.Nano Energy2019;65:104046
|
| [14] |
Anjana R,Kurias MK.Enhanced green upconversion luminescence in ZnO: Er3+, Yb3+ on Mo6+ co-doping for temperature sensor application.Methods Appl Fluoresc2017;6:015005
|
| [15] |
Cao L,Piano M.Nanoparticle-based 3D membrane for impedimetric biosensor applications.Bioelectrochemistry2020;136:107593
|
| [16] |
Du G,Cheng X,Luo X.Immobilizing of ZIF-8 derived ZnO with controllable morphologies on zeolite A for efficient photocatalysis.J Solid State Chem2017;255:215-8
|
| [17] |
Ren X,Liu D,Zhang Z.Conductometric NO2 gas sensors based on MOF-derived porous ZnO nanoparticles.Sens Actuators B: Chem2022;357:131384
|
| [18] |
Bulemo PM.Ga-doped ZnO microbelts based resistive-type sensor for detection of acetylene gas.ACS Appl Electron Mater2023;5:2106-14
|
| [19] |
Dai H,Chen H.Improvement of ethanolamine sensing performance based on Au-modified ZnO rod-like nanoflowers.Mater Lett2023;340:134183
|
| [20] |
Xu J,Li L,Zhu Y.Facile fabrication and superior gas sensing properties of spongelike Co-doped ZnO microspheres for ethanol sensors.Ceram Int2018;44:16773-80
|
| [21] |
Zhu L.Room-temperature gas sensing of ZnO-based gas sensor: a review.Sens Actuators A: Phys2017;267:242-61
|
| [22] |
Cao S,Bing Y,Zhou T.Metal-organic-framework derived Co-Mo multimetal oxide semiconductors: selective trace-level hydrogen sulfide detection.ACS Sens2024;9:2979-88
|
| [23] |
Phuoc PH,Thong LV.Comparative study on the gas-sensing performance of ZnO/SnO2 external and ZnO-SnO2 internal heterojunctions for ppb H2S and NO2 gases detection.Sens Actuators B: Chem2021;334:129606
|
| [24] |
Yang H,Li M.Hollow Au-ZnO/CN nanocages derived from ZIF-8 for efficient visible-light-driven hydrogen evolution from formaldehyde alkaline solution.Eur J Inorg Chem2019;2019:2761-7
|
| [25] |
Kang Y,Wang W.Ethanol sensing properties and first principles study of Au supported on mesoporous ZnO derived from metal organic framework ZIF-8.Sensors (Basel)2021;21:4352 PMCID:PMC8272103
|
| [26] |
Wang Z,Sun C.Excellent acetone sensing performance of Au NPs functionalized Co3O4-ZnO nanocomposite.Sens Rev2022;42:638-47
|
| [27] |
Kamble VS,Patil VB,Vajekar SN.Studies on structural, spectral and morphological properties of co-precipitation derived Co-doped ZnO nanocapsules for NO2 sensing applications.J Mater Sci: Mater Electron2021;32:26503-19
|
| [28] |
Peng H,Liu X.Effect of transition metals on the structure and performance of the doped carbon catalysts derived from polyaniline and melamine for ORR application.ACS Catal2014;4:3797-805
|
| [29] |
Duan D,He G.Co3O2 Nanosheet/Au Nanoparticle/CeO2 nanorod composites as catalysts for CO oxidation at room temperature.ACS Appl Nano Mater2020;3:12416-26
|
| [30] |
Zhang L,Zhu Z.Au nanoparticles decorated ZnS hollow spheres for highly improved gas sensor performances.Sens Actuators B: Chem2017;245:112-21
|
| [31] |
Zhang J,Wu S,Guo X.Au nanoparticle-decorated porous SnO2 hollow spheres: a new model for a chemical sensor.J Mater Chem2010;20:6453
|
| [32] |
Kaskow I,Sobczak I.The effect of copper and silver on the properties of Au-ZnO catalyst and its activity in glycerol oxidation.Appl Surf Sci2018;444:197-207
|
| [33] |
Rahbarpour S,Ghodsi N.Operating temperature dependence of sensitivity in Ag-TiO2 Schottky type gas sensors.Mater Res Express2019;6:085905
|
| [34] |
Hsueh T.Fabrication of gas sensing devices with ZnO nanostructure by the low-temperature oxidation of zinc particles.Sens Actuators B: Chem2008;131:572-6
|
| [35] |
Zhang J,Wang B.Hydrothermal synthesis of SnO2-CuO composite nanoparticles as a fast-response ethanol gas sensor.J Alloys Compd2021;886:161299
|
| [36] |
Wang J,Zhang S.Enhanced NH3 gas-sensing performance of silica modified CeO2 nanostructure based sensors.Sens Actuators B: Chem2018;255:862-70
|
| [37] |
Young S.Hydrothermal synthesis and improved CH₃OH-sensing performance of ZnO nanorods with adsorbed Au NPs.IEEE Trans Electron Devices2021;68:1886-91
|
| [38] |
Wang S,Yang T.Enhanced HCHO gas sensing properties by Ag-loaded sunflower-like In2O3 hierarchical nanostructures.J Mater Chem A2014;2:6598-604
|
| [39] |
Yan S,Li W.Synthesis of SnO2-ZnO heterostructured nanofibers for enhanced ethanol gas-sensing performance.Sens Actuators B: Chem2015;221:88-95
|
| [40] |
Pei S,Xu X,Ma Y.Exploring gas-sensing characteristics of (CH2OH)2 with controlling the morphology of BiVO4 by adjusting pH of solution.J Alloys Compd2021;859:158400
|
| [41] |
Mirzaei A,Neri G.Detection of hazardous volatile organic compounds (VOCs) by metal oxide nanostructures-based gas sensors: a review.Ceram Int2016;42:15119-41
|
| [42] |
Gao Y,Zhang Z.Synthesis of ZnO nanosheets @In2O3 hollow micro-rods heterostructures for enhanced ethanol gas sensing performance.Sens Actuators B: Chem2024;404:135271
|
| [43] |
Wen Z.Gas-sensing properties of SnO2-TiO2-based sensor for volatile organic compound gas and its sensing mechanism.Phys B: Condens Matter2010;405:1345-8
|
| [44] |
Pei S,Xu X,Almamoun O.Modulated PrFeO3 by doping Sm3+ for enhanced acetone sensing properties.J Alloys Compd2021;856:158274
|
| [45] |
Doan TLH,Lee J.Preparation of n-ZnO/p-Co3O4 heterojunctions from zeolitic imidazolate frameworks (ZIF-8/ZIF-67) for sensing low ethanol concentrations.Sens Actuators B: Chem2021;348:130684
|
| [46] |
Qin C,Gong Y,Cao J.CuO-ZnO hetero-junctions decorated graphitic carbon nitride hybrid nanocomposite: hydrothermal synthesis and ethanol gas sensing application.J Alloys Compd2019;770:972-80
|
| [47] |
Xiong Y,Zhu Z.ZIF-derived porous ZnO-Co3O4 hollow polyhedrons heterostructure with highly enhanced ethanol detection performance.Sens Actuators B: Chem2017;253:523-32
|
| [48] |
Zhao S,Hao F.P-n junctions based on CuO-decorated ZnO nanowires for ethanol sensing application.Appl Surf Sci2021;538:148140
|
| [49] |
Kamalianfar A.Promotional effects of Ag decoration on root-like ZnO microstructures for ethanol sensing.J Mater Sci: Mater Electron2023;34:10678
|