Isomerization pathway of N-ethylcarbazole hydrogenation products affected by metal-support interactions
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T. Fang | Pei Li | Shuliang Lu | Bin Wang | Shi-yuan Wang
[1] Bo Lin,et al. PtS quantum dots/Nb2O5 nanosheets with accelerated charge transfer for boosting photocatalytic H2 production. , 2022, Nanoscale.
[2] Hongge Pan,et al. Strong Metal–Support Interaction in Heterogeneous Catalysts , 2022, Advanced Energy Materials.
[3] Lirong Zheng,et al. Essential Role of Ru–Anion Interaction in Ru-Based Ammonia Synthesis Catalysts , 2022, ACS Catalysis.
[4] Y. Suh,et al. State-of-the-art Catalysts for Hydrogen Storage into Liquid Organic Hydrogen Carriers , 2022, Chemistry Letters.
[5] Yanqiang Huang,et al. Strong Metal–Support Interaction of Ru on TiO2 Derived from the Co-Reduction Mechanism of RuxTi1–xO2 Interphase , 2022, ACS Catalysis.
[6] Wei Wu,et al. Ultrasound-excited hydrogen radical from NiFe layered double hydroxide for preparation of ultrafine supported Ru nanocatalysts in hydrogen storage of N-ethylcarbazole , 2021, Ultrasonics sonochemistry.
[7] Boyang Li,et al. Ru Clusters Confined in Hydrogen-bonded Organic Frameworks for Homogeneous Catalytic Hydrogenation of N-heterocyclic Compounds with Heterogeneous Recyclability , 2021, Journal of Catalysis.
[8] A. Addad,et al. Surface molecular imprinting over supported metal catalysts for size-dependent selective hydrogenation reactions , 2021, Nature Catalysis.
[9] H. Vredenburg,et al. Insights into low-carbon hydrogen production methods: Green, blue and aqua hydrogen , 2021 .
[10] L. Chunyan,et al. Ru Surface Density-dependent Ammonia Synthesis Activity and Hydrogen Poisoning of Ceria-Supported Ru Catalysts , 2021 .
[11] Zhao Jiang,et al. Facet-dependent catalytic activities of Pd/rGO: Exploring dehydrogenation mechanism of dodecahydro-N-ethylcarbazole , 2020, Applied Catalysis B: Environmental.
[12] J. Attfield,et al. Zirconium nitride catalysts surpass platinum for oxygen reduction , 2019, Nature Materials.
[13] Y. Qi,et al. A rare earth hydride supported ruthenium catalyst for the hydrogenation of N-heterocycles: boosting the activity via a new hydrogen transfer path and controlling the stereoselectivity† †Electronic supplementary information (ESI) available: Experimental details and additional figures. See DOI: 10.103 , 2019, Chemical science.
[14] Y. Qi,et al. Promoting hydrogen absorption of liquid organic hydrogen carriers by solid metal hydrides , 2019, Journal of Materials Chemistry A.
[15] D. Bessarabov,et al. The Prospect of Hydrogen Storage Using Liquid Organic Hydrogen Carriers , 2019, Energy & Fuels.
[16] M. Kaltschmitt,et al. Liquid Organic Hydrogen Carrier (LOHC) – Assessment based on chemical and economic properties , 2019, International Journal of Hydrogen Energy.
[17] Jie Zheng,et al. Bimetallic Ru-Ni/TiO2 catalysts for hydrogenation of N-ethylcarbazole: Role of TiO2 crystal structure , 2019 .
[18] Y. Suh,et al. Hydrogenation of the LOHC Compound Monobenzyl Toluene over ZrO2‐supported Ru Nanoparticles: A Consequence of Zirconium Hydroxide's Surface Hydroxyl Group and Surface Area , 2018, ChemCatChem.
[19] H. Hosono,et al. Anchoring Bond between Ru and N Atoms of Ru/Ca2NH Catalyst: Crucial for the High Ammonia Synthesis Activity , 2017 .
[20] Xiaodong Wang,et al. Coordinatively Unsaturated Al3+ Sites Anchored Subnanometric Ruthenium Catalyst for Hydrogenation of Aromatics , 2017 .
[21] R. Crabtree. Nitrogen-Containing Liquid Organic Hydrogen Carriers: Progress and Prospects , 2017 .
[22] C. Papp,et al. Liquid Organic Hydrogen Carriers (LOHCs): Toward a Hydrogen-free Hydrogen Economy. , 2017, Accounts of chemical research.
[23] M. Beller,et al. Highly selective hydrogenation of arenes using nanostructured ruthenium catalysts modified with a carbon–nitrogen matrix , 2016, Nature Communications.
[24] D. Morgan. Resolving ruthenium: XPS studies of common ruthenium materials , 2015 .
[25] J. Biskupek,et al. Selective CO Methanation on Ru/TiO2 Catalysts: Role and Influence of Metal–Support Interactions , 2015 .
[26] W. Arlt,et al. Evaluation of industrially applied heat-transfer fluids as liquid organic hydrogen carrier systems. , 2014, ChemSusChem.
[27] W. Arlt,et al. Liquid Organic Hydrogen Carriers: An Upcoming Alternative to Conventional Technologies. Thermochemical Studies. , 2012 .
[28] S. Tsang,et al. Comparison of catalytic performance of supported ruthenium and rhodium for hydrogenation of 9-ethylcarbazole for hydrogen storage applications , 2012 .
[29] Richard York,et al. Do alternative energy sources displace fossil fuels , 2012 .
[30] R. Prins. Hydrogen spillover. Facts and fiction. , 2012, Chemical reviews.
[31] D. Cresswell,et al. By-Products Formation in the Dehydrogenation of Methylcyclohexane , 2011 .
[32] Shik Chi Tsang,et al. Hydrogenation of 9-ethylcarbazole as a prototype of a liquid hydrogen carrier , 2010 .
[33] Kevin J. Smith,et al. Kinetics of Hydrogen Uptake and Release from Heteroaromatic Compounds for Hydrogen Storage , 2010 .
[34] M. Gaberšček,et al. Electrochemical Oxidation of ZrN Hard (PVD) Coatings Studied by XPS , 1996 .
[35] M. Boudart,et al. The kinetics and mechanism of spillover , 1974 .