A highly selective, efficient hydrogen gas sensor based on bimetallic (Pd–Au) alloy nanoparticle (NP)-decorated SnO2 nanorods

文献信息

发布日期 2023-11-17
DOI 10.1039/D3TA05878F
影响因子 12.732
作者

Gaurav Pandey, Shiv Dutta Lawaniya, Sanjay Kumar, Prabhat K. Dwivedi, Kamlendra Awasthi


查看原文

摘要

The surging worldwide demand for hydrogen highlights the crucial need for advanced detection technologies, essential for enhancing safety and optimizing utilization across various applications. In this context, we have constructed a highly sensitive hydrogen gas sensor based on SnO2 nanorods decorated with bimetallic (Pd–Au) alloy nanoparticles (NPs) (Pd–Au@SnO2). The material synthesis (Pd–Au@SnO2) was achieved through a hybrid approach involving a hydrothermal treatment and an in situ ascorbic acid reduction process. Various compositions of SnO2 nanorods were prepared by tailoring the bimetallic content of Pd and Au, which was accomplished by adding different volume ratios of their respective precursor solutions. Among the various synthesized combinations, the composition of SnO2 (S1-0.5) with bimetallic decoration (Pd–Au) in a volume ratio of 1 : 0.5 demonstrates superior gas sensing capabilities towards hydrogen (25–500 ppm) within the temperature range 100–200 °C. The S1-0.5 sensor shows a response (Ra/Rg) of 46.4 towards 100 ppm of hydrogen at 175 °C, which is 42.7 fold higher than the bare SnO2 (S0-0) and 2.7 fold higher than Pd decorated SnO2 (S1-0). The excellent gas sensing performance of the S1-0.5 sensor is due to the strong catalytic effect and the synergetic effect of both Pd and Au. The response and recovery times of the S1-0.5 sensor were measured to be 19 s and 302 s, respectively. Furthermore, the S1-0.5 sensor also showed a high selectivity toward gaseous NH3, CO2, CO, and ethanol with a high stability and repeatability.

相关文献

Heterotellurium-containing macrocycles towards degradable tellurium-functionalized polymers

Jieni Hu, Chuanhao Sun, Siqi Li, Yuan Yuan

2021-07-20 Communication

DOI: 10.1039/D1PY00703C

Homo- and co-polymerisation of di(propylene glycol) methyl ether methacrylate – a new monomer

Anna P. Constantinou, Georgios Patias, Birsen Somuncuoğlu, Toby Brock, Daniel W. Lester, David M. Haddleton, Theoni K. Georgiou

2021-05-12 Paper

DOI: 10.1039/D1PY00444A

Organic–inorganic nanohybrids based on an AIE luminogen-functional polymer and CdTe/ZnS QDs: morphologies, optical properties, and applications

Bingfeng Shi, Jianhua Lü, Ying Liu, Yang Xiao, Changli Lü

2021-06-02 Paper

DOI: 10.1039/D1PY00308A

Initiator-dependent kinetics of lyotropic liquid crystal-templated thermal polymerization

Younes Saadat, Kyungtae Kim, Reza Foudazi

2021-03-11 Paper

DOI: 10.1039/D1PY00127B

From 0-dimension to 1-dimensions: Au nanocrystals as versatile plasmonic photocatalyst for broadband light induced RAFT polymerization

Junle Zhang, Mengya Li, Yanjie He, Xiaomeng Zhang, Zhe Cui, Peng Fu, Minying Liu, Xiaoguang Qiao, Qingxiang Zhao, Xinchang Pang

2021-03-25 Paper

DOI: 10.1039/D1PY00088H

Towards scalable, low dispersity, and dimensionally tunable 2D platelets using living crystallization-driven self-assembly

Charlotte E. Ellis, Tomoya Fukui, Cristina Cordoba, Arthur Blackburn, Ian Manners

2021-05-27 Paper

DOI: 10.1039/D1PY00571E

Supramolecular organogel formation behaviors of beads-on-string shaped poly(azomethine)s dependent on POSS structures in the main chains

Ayano Ishida, Shunichi Fujii, Akifumi Sumida, Tasuku Kamitani, Saori Minami, Kenji Urayama, Hiroaki Imoto

2021-05-03 Paper

DOI: 10.1039/D1PY00346A

Cross-linked polyurethane with dynamic phenol-carbamate bonds: properties affected by the chemical structure of isocyanate

Jiaxin Shi, Tianze Zheng, Yao Zhang, Baohua Guo, Jun Xu

2021-03-23 Paper

DOI: 10.1039/D1PY00157D

Detection and evaluation of polymer–polymer interactions in dilute solutions of associating polymers

Georges M. Pavlov, Anna A. Gosteva, Olga V. Okatova, Olga A. Dommes, Irina I. Gavrilova

2021-03-22 Paper

DOI: 10.1039/D0PY01725F

Polyolefin graft copolymers through a ring-opening metathesis grafting through approach

Huiqun Wang, Sebla Onbulak, Steven Weigand, Frank S. Bates, Marc A. Hillmyer

2021-03-15 Paper

DOI: 10.1039/D0PY01728K

您可能还喜欢

化合物问答

如何处理含有顺-二(2,2'-联吡啶)二氯化钌(II)二水合物(CAS号:67776-38-9)的废料?

处理含有该化合物的废料时,应先收集并分类,然后根据其危险特性选择合适的处理方法。推荐采用焚烧或由专业机构进行安全处理,以确保符合环保法规的要求。处理过程中应佩戴...

67776-38-93-{[(2R,3R,4S,5R,6R)...
化合物问答

4-amino-2-bromo-3-iodopyridine(CAS号:1300750-77-9)的市场或研究趋势如何?

4-氨基-2-溴-3-碘吡啶主要应用于药物合成和研究领域,尤其是在抗病毒和抗癌药物的研发中。随着新型药物的需求增加,该化合物的研究趋势较好。市场方面,由于其特殊...

1300750-77-92-bromo-3-iodopyridi...
化合物问答

4-乙酰基氨基-2-氨基-苯甲酸(CAS号:43134-76-5)的市场或研究趋势如何?

当前,4-乙酰基氨基-2-氨基-苯甲酸(CAS号:43134-76-5)在医药和化工领域有一定的应用。随着药物研发的进展,该化合物在新型药物设计中的应用可能增加...

43134-76-54-Acetamido-2-aminob...
化合物问答

庚a氟-1-(1-碘-1,2,2,2-四氟乙氧基)丙烷(CAS号:107432-46-2)的市场或研究趋势如何?

该化合物目前主要用于特定的工业应用,如氟聚合物的合成。市场趋势显示,由于其独特的结构和性能,未来可能在新型氟材料和特种化学品领域有更多的应用。研究趋势方面,主要...

107432-46-21,1,1,2,2,3,3-Heptaf...
化合物问答

在合成中是否有Propargyl-PEG13-bromide(CAS号:2055105-25-2)的替代品?

可以考虑使用1,3-丁二烯-1-炔-3-基-聚乙二醇-13-溴化物作为Propargyl-PEG13-bromide的替代品,因为两者在结构上相似,均可用于合成...

2055105-25-2Propargyl-peg13-brom...
化合物问答

2-氨基-6-甲氧基嘌呤(CAS号:20535-83-5)安全吗?

2-氨基-6-甲氧基嘌呤在正常使用条件下相对安全,但在操作时仍需注意防护措施,如佩戴手套和护目镜,避免吸入或接触皮肤和眼睛。

20535-83-56-Methoxy-7H-purin-2...
化合物问答

2-甲基-3-溴苯乙酸乙酯(CAS号:1261862-72-9)适用哪些法规指南?

该化合物根据其化学性质和潜在危害,可能适用于GHS(全球化学品统一分类和标签制度)的分类标准。具体分类需依据其毒性和燃烧危险性进行评估。此外,欧洲化学品管理局(...

1261862-72-9Ethyl (3-bromo-2-met...
化合物问答

4,4-二甲基吡咯烷-3-羧酸盐酸盐(CAS号:1351343-41-3)应用于哪些行业?

4,4-二甲基吡咯烷-3-羧酸盐酸盐在医药、聚合物和传感器领域有应用。在医药领域,它可以作为某些药物的中间体;在聚合物领域,它可用作某些聚合物的稳定剂;在传感器...

1351343-41-34,4-Dimethyl-3-pyrro...
化合物问答

处理5-Hydroxy-7-methoxy-2-(4-methoxyphenyl)-4-oxo-4H-chromen-6-yl 2-O-beta-D-xylopyranosyl-beta-D-glucopyranoside(CAS号:149998-39-0)时应注意哪些实验室安全事项?

处理该化合物时应注意使用个人防护装备(如手套、护目镜和实验服),在通风橱中操作。避免直接接触皮肤和吸入,泄漏时应立即清理并使用适当的吸收材料。参考安全数据表(S...

149998-39-05-Hydroxy-7-methoxy-...
化合物问答

7-甲基-1,2,3,4-四氢-吖啶-9-甲酸(CAS号:345621-27-4)的市场或研究趋势如何?

该化合物在医药研究中具有潜在应用价值,特别是在抗癌药物研发方面。随着研究的深入,对其合成方法的优化和生物活性的进一步探索将成为研究热点。

345621-27-47-Methyl-1,2,3,4-tet...

来源期刊

Journal of Materials Chemistry A

Journal of Materials Chemistry A
CiteScore: 19.5
自引率: 4.7%
年发文量: 2211

Journal of Materials Chemistry A, B & C cover high quality studies across all fields of materials chemistry. The journals focus on those theoretical or experimental studies that report new understanding, applications, properties and synthesis of materials. The journals have a strong history of publishing quality reports of interest to interdisciplinary communities and providing an efficient and rigorous service through peer review and publication. The journals are led by an international team of Editors-in-Chief and Associate Editors who are all active researchers in their fields. Journal of Materials Chemistry A, B & C are separated by the intended application of the material studied. Broadly, applications in energy and sustainability are of interest to Journal of Materials Chemistry A, applications in biology and medicine are of interest to Journal of Materials Chemistry B, and applications in optical, magnetic and electronic devices are of interest to Journal of Materials Chemistry C. More than one Journal of Materials Chemistry journal may be suitable for certain fields and researchers are encouraged to submit their paper to the journal that they feel best fits for their particular article. Example topic areas within the scope of Journal of Materials Chemistry A are listed below. This list is neither exhaustive nor exclusive. Artificial photosynthesis Batteries Carbon dioxide conversion Catalysis Fuel cells Gas capture/separation/storage Green/sustainable materials Hydrogen generation Hydrogen storage Photocatalysis Photovoltaics Self-cleaning materials Self-healing materials Sensors Supercapacitors Thermoelectrics Water splitting Water treatment

推荐供应商

免责声明
本页面提供的学术期刊信息仅供参考和研究使用。我们与任何期刊出版商均无关联,也不处理投稿事宜。如有投稿相关咨询,请直接联系相关期刊出版商。
如发现页面信息有误,请发送邮件至 support@chemtradehub.com 联系我们。我们将及时核实并处理您的问题。