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Journal Article
D. M. Sharma and Punji, B., 3 d transition metal-catalyzed hydrogenation of nitriles and alkynes, Chemistry-An Asian Journal, vol. 15, no. 6, pp. 690-708, 2020.
A. S. Nagpure, Gogoi, P., and Chilukuri, S. V., Active and recyclable gold metal nanoparticles catalyst supported on nitrogen-doped mesoporous carbon for chemoselective hydrogenation of cinnamaldehyde to cinnamyl alcohol, Chemistry-An Asian Journal, vol. 16, no. 18, pp. 2702-2722, 2021.
N. Hiyoshi, Rode, C. V., Sato, O., and Shirai, M., Biphenyl hydrogenation over supported transition metal catalysts under supercritical carbon dioxide solvent, Applied Catalysis A - General, vol. 288, no. 1-2, pp. 43-47, 2005.
S. Bhogeswararao and Srinivas, D., Catalytic conversion of furfural to industrial chemicals over supported Pt and Pd catalysts, Journal of Catalysis, vol. 327, pp. 65-77, 2015.
S. Bhogeswararao and Srinivas, D., Chemoselective hydrogenation of cinnamaldehyde over Pd/CeO2-ZrO2 catalysts, Catalysis Letters, vol. 140, no. 1-2, pp. 55-64, 2010.
S. Sisodiya, Lazar, A., Shylesh, S., Wang, L., Thiel, W. R., and Singh, A. Pal, Covalently anchored ruthenium-phosphine complex on mesoporous organosilica: catalytic applications in hydrogenation reactions, Catalysis Communications, vol. 25, pp. 22-27, 2012.
L. Wang, Jia, M., Shylesh, S., Philippi, T., Seifert, A., Ernst, S., Singh, A. Pal, and Thiel, W. R., Covalently immobilized triphenylphosphine rhodium complex: synthesis, characterization, and application in catalytic olefin hydrogenation, Chemcatchem, vol. 2, no. 11, pp. 1477-1482, 2010.
K. Rajendran, Pandurangan, N., Vinod, C. P., Khan, T. S., Gupta, S., M. Haider, A., and Jagadeesan, D., CuO as a reactive and reusable reagent for the hydrogenation of nitroarenes, Applied Catalysis B-Environmental, vol. 297, p. 120417, 2021.
A. P. Tathod and Dhepe, P. Laxmikant, Efficient method for the conversion of agricultural waste into sugar alcohols over supported bimetallic catalysts, Bioresource Technology, vol. 178, pp. 36-44, 2015.
P. K. Jori and Jadhav, V. H., Efficient synthesis of gamma-valerolactone-a potential fuel from biomass derived levulinic acid using catalytic transfer hydrogenation over Hf@CCSO3H catalyst, Catalysis Letters, vol. 150, no. 7, pp. 2038-2044, 2020.
A. P. Tathod and Dhepe, P. L., Elucidating the effect of solid base on the hydrogenation of C5 and C6 sugars over Pt–Sn bimetallic catalyst at room temperature, Carbohydrate Research, vol. 505, p. 108341, 2021.
S. A. Siddiqui, Narkhede, U. C., Lahoti, R. J., and Srinivasan, K. V., Enantioselective synthesis of (+)-(S,S)-reboxetine, Synlett, no. 11, pp. 1771-1773, 2006.
A. A. Deshmukh, Kinage, A. K., Kumar, R., and Meijboom, R., Heterogenized Ru(II) phenanthroline complex for chemoselective hydrogenation of diketones under biphasic aqueous medium, Journal of Molecular Catalysis A-Chemical, vol. 333, no. 1-2, pp. 114-120, 2010.
A. A. Deshmukh, Kinage, A. K., and Kumar, R., Highly chemoselective catalytic system for hydrogenation of diketones to ketols: an environmentally benevolent system, Catalysis Letters, vol. 120, no. 3-4, pp. 257-260, 2008.
M. Y. Khan, Joshi, S. S., and Ranade, V. V., Hydrogen solubility in biphasic liquid reaction mixture of cinnamaldehyde hydrogenation: experimental and mathematical modeling study, Journal of Chemical Sciences, vol. 134, no. 1, p. 1, 2022.
P. A. Kamble, Vinod, C. P., Rathod, V. K., and Kantam, M. Lakshmi, Hydrogenation of levulinic acid to gamma-valerolactone over nickel supported organoclay catalyst, Catalysis Today, vol. 408, pp. 36-49, 2023.
E. Balaraman and Milstein, D., Hydrogenation of polar bonds catalysed by ruthenium-pincer complexes, Ruthenium in Catalysis, vol. 48, pp. 19-43, 2014.
S. Bhogeswararao and Srinivas, D., Intramolecular selective hydrogenation of cinnamaldehyde over CeO2-ZrO2-supported Pt catalysts, Journal of Catalysis, vol. 285, no. 1, pp. 31-40, 2012.
S. Kondawar and Rode, C., Ionic liquids for the sustainable transformation of levulinic acid to gamma-valerolactone (GVL), Current Opinion in Green and Sustainable Chemistry, vol. 35, p. 100607, 2022.
S. B. Shinde and Deshpande, R. M., Kinetics of hydrogenation of lauric acid in a batch slurry reactor using Ru-Sn/TiO2 catalyst, Asian Journal of Chemistry, vol. 24, no. 6, pp. 2767-2771, 2012.
M. V. Mane, Less frustration, more Activity—theoretical insights into frustrated lewis pairs for hydrogenation catalysis, ChemCatChem, vol. 9, no. 15, pp. 3013-3022, 2017.
N. Hiyoshi, Mine, E., Rode, C. V., Sato, O., and Shirai, M., Low temperature hydrogenation of tetralin over supported rhodium catalysts in supercritical carbon dioxide solvent, Applied Catalysis A-General, vol. 310, pp. 194-198, 2006.
K. Tarade, Shinde, S., and Rode, C., Magnetically separable catalyst for condensation of renewable aldehydes and 2-methylfuran to saturated cyclic oxygenates, Fuel Processing Technology, vol. 197, p. 106191, 2020.
L. K. Preethi, Mathews, T., Walczak, L., and Gopinath, C. S., Marginally hydrogenated triphasic titania nanotubes for effective visible-light photocatalytic hydrogen generation, Energy Technology, vol. 6, no. 2, pp. 280-288, 2018.
M. G. Dohade and Dhepe, P. L., One pot conversion of furfural to 2-methylfuran in the presence of PtCo bimetallic catalyst, Clean Technologies and Environmental Policy, vol. 20, no. 4, pp. 703-713, 2018.
N. S. Date, Hengne, A. M., Huang, K. - W., Chikate, R. C., and Rode, C. V., One pot hydrogenation of furfural to 2-methyl tetrahydrofuran over supported mono- and Bi-metallic catalysts, ChemistrySelect, vol. 5, no. 31, pp. 9590-9600, 2020.
V. R. Acham, Biradar, A. V., Dongare, M. K., Kemnitz, E., and Umbarkar, S. B., Palladium nanoparticles supported on magnesium hydroxide fluorides: a selective catalyst for olefin hydrogenation, ChemCatChem, vol. 6, no. 11, pp. 3182-3191, 2014.
T. Tewari, Kumar, R., Chandanshive, A. C., and Chikkali, S. H., Phosphorus ligands in hydroformylation and hydrogenation: a personal account, Chemical Record, 2021.
V. Udayakumar, Alexander, S., Gayathri, V., Shivakumaraiah,, Patil, K. R., and Viswanathan, B., Polymer-supported palladium-imidazole complex catalyst for hydrogenation of substituted benzylideneanilines, Journal of Molecular Catalysis A-Chemical, vol. 317, no. 1-2, pp. 111-117, 2010.
S. Mayadevi, Reactions in supercritical carbon dioxide, Indian Journal of Chemistry Section A-Inorganic Bio-Inorganic Physical Theoretical & Analytical Chemistry, vol. 51, pp. 1298-1305, 2012.
N. K. Agrawal, Dash, S. R., Vanka, K., Nethaji, M., and Jagirdar, B. R., Reactivity of four coordinate iridium complex towards hydrogen: an experimental and computational study, Journal of Organometallic Chemistry, vol. 965, p. 122317, 2022.
S. D. Chaudhary, Rahatade, S. S., Joshi, S. S., and Mali, N. A., Reduction of carbon dioxide to dimethylformamide using ruthenium doped Mg/Al hydrotalcites under supercritical conditions, Journal of CO2 Utilization, vol. 61, p. 102055, 2022.
M. Shirai, Rode, C. V., Mine, E., Sasaki, A., Sato, O., and Hiyoshi, N., Ring hydrogenation of naphthalene and 1-naphthol over supported metal catalysts in supercritical carbon dioxide solvent, Catalysis Today, vol. 115, no. 1-4, pp. 248-253, 2006.
M. Manikandan, Venugopal, A. Kumar, Prabu, K., Jha, R. Kumar, and Thirumalaiswamy, R., Role of surface synergistic effect on the performance of Ni-based hydrotalcite catalyst for highly efficient hydrogenation of furfural, Journal of Molecular Catalysis A-Chemical, vol. 417, pp. 153-162, 2016.
A. Bordoloi, Amrute, A. P., and Halligudi, S. B., [Ru(salen)(NO)] complex encapsulated in mesoporous SBA-16 as catalyst for hydrogenation of ketones, Catalysis Communications, vol. 10, no. 1, pp. 45-48, 2008.
P. K. Upadhyay and Kumar, P., Short and efficient synthesis of (S)-(+)-2-(Hydroxymethyl)-6-piperidin-2-one, Synthesis-Stuttgart, no. 15, pp. 2512-2514, 2010.
K. D. Mane, Kamble, R. B., and Suryavanshi, G., Short enantioselective total synthesis of (+)-tofacitinib, Tetrahedron Letters, vol. 67, p. 152838, 2021.
N. S. Biradar, Hengne, A. M., Birajdar, S. N., Niphadkar, P. S., Joshi, P. N., and Rode, C. V., Single-pot formation of THFAL via catalytic hydrogenation of FFR over Pd/MFI catalyst, ACS Sustainable Chemistry & Engineering, vol. 2, no. 2, pp. 272-281, 2014.
A. Tathod, Kane, T., Sanil, E. S., and Dhepe, P. Laxmikant, Solid base supported metal catalysts for the oxidation and hydrogenation of sugars, Journal of Molecular Catalysis A-Chemical, vol. 388, pp. 90-99, 2014.
R. Goyal, Sarkar, B., Bag, A., Siddiqui, N., Dumbre, D. K., Lucas, N., Bhargava, S. Kumar, and Bordoloi, A., Studies of synergy between metal-support interfaces and selective hydrogenation of HMF to DMF in water, Journal of Catalysis, vol. 340, pp. 248-260, 2016.
A. M. Hengne, Biradar, N. S., and Rode, C. V., Surface species of supported ruthenium catalysts in selective hydrogenation of levulinic esters for bio-refinery application, Catalysis Letters, vol. 142, no. 6, pp. 779-787, 2012.
U. Velua, Stanislaus, A., Virupaiah, G., Shivakumaraiah,, Patil, K. Rangu, and Balasubramanian, V., Synthesis, characterisation of polymer-supported palladium-2-methylimidazole complex catalyst for the hydrogenation of aromatic nitro compounds, Journal of Chemical Research, no. 2, pp. 112-115, 2011.
A. Ghosh and Kumar, R., Synthesis, characterization and catalytic application of Ru-II-ethylenediamine complex - mesoporous silica as heterogeneous catalyst system in chemo-selective hydrogenation of alpha,beta-unsaturated carbonyl compounds, Microporous and Mesoporous Materials, vol. 87, no. 1, pp. 33-44, 2005.
N. Shreehari Date, La Parola, V., Rode, C. Vasant, and Testa, M. Luisa, Ti-doped Pd-Au catalysts for one-pot hydrogenation and ring opening of furfural, Catalysts, vol. 8, no. 6, p. 252, 2018.
R. Chaudhary and Dhepe, P. L., Upgrading lignin derived monomers over basic supported metal catalysts, Fuel, vol. 306, p. 121588, 2021.