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Journal Article
Y. B. Sawane, Datar, S., Ogale, S. B., and Banpurkar, A. G., Hysteretic DC electrowetting by field-induced nano-structurations on polystyrene films, Soft Matter, vol. 11, no. 13, pp. 2655-2664, 2015.
M. V. Sardeshpande, Juvekar, V. A., and Ranade, V. V., Hysteresis in cloud heights during solid suspension in stirred tank reactor: experiments and CFD simulations, Aiche Journal, vol. 56, no. 11, pp. 2795-2804, 2010.
H. Kalita, Harikrishnan, V., Shinde, D. B., Pillai, V. K., and Aslam, M., Hysteresis and charge trapping in graphene quantum dots, Applied Physics Letters, vol. 102, no. 14, p. 143104, 2013.
N. Sridevi, Vishwe, P., and Prabhune, A., Hypocholesteremic effect of bile salt hydrolase from Lactobacillus buchneri ATCC 4005, Food Research International, vol. 42, no. 4, pp. 516-520, 2009.
B. D. Rupanawar, Mane, K. D., and Suryavanshi, G., Hypervalent-iodine-mediated oxidation followed by the acetoxylation/tosylation of alpha-substituted benzylamines to obtain alpha-acyloxy/tosyloxy ketones, New Journal of Chemistry, vol. 46, no. 35, pp. 16832-16839, 2022.
V. Ramavath, Rupanawar, B. D., More, S. G., Bansode, A. H., and Suryavanshi, G., Hypervalent iodine(iii) induced oxidative olefination of benzylamines using Wittig reagents, New Journal of Chemistry, vol. 45, no. 19, pp. 8806-8813, 2021.
N. Kulkarni-Dwivedi, Patel, P. R., V. Shravage, B., Umrani, R. D., Paknikar, K. M., and Jadhav, S. H., Hyperthermia and doxorubicin release by Fol-LSMO nanoparticles induce apoptosis and autophagy in breast cancer cells, Nanomedicine, vol. 17, no. 25, pp. 1929-1949, 2022.
K. Gour, Bisai, M. Kumar, and Sen, S. S., Hypersilyl substituent in heavier low-valent group 14 chemistry, European Journal of Inorganic Chemistry, vol. 2022, no. 11, p. e202200071, 2022.
U. Khisti, Bastawade, K. B., and Gokhale, D. V., Hyper-production of beta-glucosidase and beta-xylosidase by aspergillus niger NCIM 1207 In Xylan-Containing Media, Bioresources, vol. 6, no. 2, pp. 2066-2076, 2011.
S. Mane, Ponrathnam, S., and Chavan, N., Hyperhydrophilic three-dimensional crosslinked beads as an effective drug carrier in acidic medium: adsorption isotherm and kinetics appraisal, New Journal of Chemistry, vol. 39, no. 5, pp. 3835-3844, 2015.
P. Anilkumar and Jayakannan, M., Hydroxyl-functionalized polyaniline nanospheres: tracing molecular interactions at the nanosurface via vitamin C sensing, Langmuir, vol. 24, no. 17, pp. 9754-9762, 2008.
A. Kumar and Srinivas, D., Hydroxylation of phenol with hydrogen peroxide catalyzed by Ti-SBA-12 and Ti-SBA-16, Journal of Molecular Catalysis A-Chemical, vol. 368, pp. 112-118, 2013.
A. Mishra, Hydroxyl radical generation in mycobacterial cell is an essential process for breaking dormancy and maintenance of active state by stepwise metabolic shift, Free Radical Biology and Medicine, vol. 65, p. S146, 2013.
S. Paula and Bhattacharya, A. K., Hydroxyl directed C-arylation: synthesis of 3-hydroxyflavones and 2-phenyl-3-hydroxy pyran-4-ones under transition-metal free conditions, Organic & Biomolecular Chemistry, vol. 16, no. 3, pp. 444-451, 2018.
A. Indra, Gopinath, C. S., Bhaduri, S., and Lahiri, G. Kumar, Hydroxyapatite supported palladium catalysts for suzuki-miyaura cross-coupling reaction in aqueous medium, Catalysis Science & Technology, vol. 3, no. 6, pp. 1625-1633, 2013.
A. C. Garade, Niphadkar, P. S., Joshi, P. N., and Rode, C. V., Hydroxyalkylation of p-Cresol to 2,2 `-methylenebis(4-methylphenol) using Sn/Si-MCM-41 catalysts, Chemistry Letters, vol. 39, no. 2, pp. 126-127, 2010.
D. Rase, Illathvalappil, R., Singh, H. Dev, Shekhar, P., Leo, L. S., Chakraborty, D., Haldar, S., Shelke, A., Ajithkumar, T. G., and Vaidhyanathan, R., Hydroxide ion-conducting viologen-bakelite organic frameworks for flexible solid-state zinc-air battery applications, Nanoscale Horizons, vol. 8, no. 2, pp. 224-234, 2023.
R. Vellacheri, Pillai, V. K., and Kurungot, S., Hydrous RuO2-carbon nanofiber electrodes with high mass and electrode-specific capacitance for efficient energy storage, Nanoscale, vol. 4, no. 3, pp. 890-896, 2012.
P. Pratim Das, Roy, A., Agarkar, S., and Devi, P. Sujatha, Hydrothermally synthesized fluorescent Zn2SnO4 nanoparticles for dye sensitized solar cells, Dyes and Pigments, vol. 154, pp. 303-313, 2018.
M. Kumar Chini and Chatterjee, S., Hydrothermally reduced nano porous graphene–polyaniline nanofiber composites for supercapacitor, FlatChem, vol. 1, pp. 1-5, 2017.
N. T. Shelke and Karche, B. R., Hydrothermal synthesis of WS2/RGO sheet and their application in UV photodetector, Journal of Alloys and Compounds, vol. 653, pp. 298-303, 2015.
R. Aher, Bhorde, A., Sharma, P., Nair, S., Borate, H., Pandharkar, S., Rondiya, S., Chaudhary, M., Gopinath, C., Suryawanshi, S., More, M., and Jadkar, S., Hydrothermal synthesis of rGO-PbBi2Se4 composite and investigation of its structural, chemical and field emission properties, Journal of Materials Science-Materials in Electronics, vol. 29, no. 12, pp. 10494-10503, 2018.
T. R. Gaydhankar, Samuel, V., and Joshi, P. N., Hydrothermal synthesis of MCM-41 using differently manufactured amorphous dioxosilicon sources, Materials Letters, vol. 60, no. 7, pp. 957-961, 2006.
P. N. Bhagat, Patil, K. R., Bodas, D. S., and Paknikar, K. M., Hydrothermal synthesis and characterization of carbon nanospheres: a mechanistic insight, RSC Advances, vol. 5, no. 73, pp. 59491-59494, 2015.
N. T. Shelke and Late, D. J., Hydrothermal growth of MoSe2 nanoflowers for photo- and humidity sensor applications, Sensors and Actuators A-Physical, vol. 295, pp. 160-168, 2019.
N. T. Shelke, Karle, S. C., and Karche, B. R., Hydrothermal growth and humidity-dependent electrical properties of molybdenum disulphide nanosheets, Journal of Nanoscience and Nanotechnology, vol. 19, no. 8, pp. 5158-5166, 2019.
E. Balaraman, Srinivas, V., and Swamy, K. C. Kumara, Hydrophosphonylation of activated alkenes and alkynes via fluoride ion activation in ionic liquid medium, Tetrahedron, vol. 65, no. 35, pp. 7603–7610, 2009.
A. S. Shedge, Wadgaonkar, P. P., Lele, A. K., and Badiger, M. V., Hydrophobically modified poly(vinyl alcohol) using alkoxy-substituted methyl gallate: synthesis and rheology, Journal of Polymer Science Part B-Polymer Physics, vol. 48, no. 10, pp. 1054-1063, 2010.
A. S. Shedge, Lele, A. K., Wadgaonkar, P. P., Hourdet, D., Pcrrin, P., Chassenieux, C., and Badiger, M. V., Hydrophobically modified poly(acrylic acid) using 3-pentadecylcyclohexylamine: synthesis and rheology, Macromolecular Chemistry and Physics, vol. 206, no. 4, pp. 464-472, 2005.
A. B. Kulal, Kasabe, M. M., Jadhav, P. V., Dongare, M. K., and Umbarkar, S. B., Hydrophobic WO3/SiO2 catalyst for the nitration of aromatics in liquid phase, Applied Catalysis A-General, vol. 574, pp. 105-113, 2019.
P. Sree Sreeprasanth, Srivastava, R., Srinivas, D., and Ratnasamy, P., Hydrophobic, solid acid catalysts for production of biofuels and lubricants, Applied Catalysis A-General, vol. 314, no. 2, pp. 148-159, 2006.
S. R. Khairkar, ,, Shedge, A. A., Chhatre, S. Y., Suresh, A. K., Chakrabarti, S., Patil, V. R., and Nagarkar, A. A., Hydrophobic interpenetrating polyamide-PDMS membranes for desalination, pesticides removal and enhanced chlorine tolerance, Chemosphere, vol. 258, p. 127179, 2020.
D. Sarma, Pawar, S. S., Deshpande, S. S., and Kumar, A., Hydrophobic effects in a simple Diels-Alder reaction in water, Tetrahedron Letters, vol. 47, no. 23, pp. 3957-3958, 2006.
D. Sarma and Kumar, A., Hydrophobic effects are dominant over secondary orbital interactions for a simple Diels-Alder reaction in salt solutions, Organic Letters, vol. 8, no. 10, pp. 2199-2202, 2006.
M. K. Singh, Xu, R., Moebs, S., Kumar, A., Queneau, Y., Cowling, S. J., and Goodby, J. W., Hydrophobic and hydrophilic balance and its effect on mesophase behaviour in hydroxyalkyl ethers of methyl glucopyranoside, Chemistry-A European Journal, vol. 19, no. 16, pp. 5041-5049, 2013.
K. Nabeela, Thorat, M., Sumina, N. B., Ramachandran, A. M., Thomas, R. Thankam, Preethikumar, G., A. Mohamed, P., Asok, A., Dastager, S. Gulam, and Pillai, S., Hydrophilic 3D interconnected network of bacterial nanocellulose/black titania photothermal foams as an efficient interfacial solar evaporator, ACS Applied Bio Materials, vol. 4, no. 5, pp. 4373–4383, 2021.
P. Kumar and Gupta, P., Hydrolytic kinetic resolution as an emerging tool in the synthesis of bioactive molecules, Synlett, no. 9, pp. 1367-1382, 2009.
A. Mallick, Garai, B., Diaz, D. Diaz, and Banerjee, R., Hydrolytic conversion of a metal-organic polyhedron into a metal-organic framework, Angewandte Chemie-International Edition, vol. 52, no. 51, pp. 13755-13759, 2013.
J. K. Satyarthi, Srinivas, D., and Ratnasamy, P., Hydrolysis of vegetable oils and fats to fatty acids over solid acid catalysts, Applied Catalysis A-General, vol. 391, no. 1-2 , pp. 427-435, 2011.
R. Singh, Varma, A., Laxman, R. Seeta, and Rao, M., Hydrolysis of cellulose derived from steam exploded bagasse by penicillium cellulases: comparison with commercial cellulase, Bioresource Technology, vol. 100, no. 24, pp. 6679-6681, 2009.
M. Banu, Sankaranarayanan, T. M., Venuvanalingam, P., Magesh, G., and Sivasanker, S., Hydrogenolysis of sorbitol over Ni, Pt and Ru supported on SBA-15, Indian Journal of Chemistry. Section A: Inorganic, Physical, Theoretical & Analytical Chemistry, vol. 56 , no. 2, pp. 226-231, 2017.
S. Bhowmik, Enjamuri, N., and Darbha, S., Hydrogenolysis of glycerol in an aqueous medium over Pt/WO3/zirconium phosphate catalysts studied by H-1 NMR spectroscopy, New Journal of Chemistry, vol. 45, no. 11, pp. 5013-5022, 2021.
Y. Hiraishi, Minakawa, N., Taniguchi, K., Nagasawa, Y., Nanao, H., ,, Sato, O., Yamaguchi, A., and Shirai, M., Hydrogenolysis of benzofuran using aqueous ethanol solution over graphite-supported platinum catalyst, Journal of the Indian Chemical Society, vol. 98, no. 2, p. 100021, 2021.
B. Jancy and Asha, S. K., Hydrogen-bonding-induced conformational change from J to H aggregate in novel highly fluorescent liquid-crystalline perylenebisimides, Chemistry of Materials, vol. 20, no. 1, pp. 169–181, 2008.
N. R. Mote and Chikkali, S. H., Hydrogen-bonding-assisted supramolecular metal catalysis, Chemistry-An Asian Journal, vol. 13, no. 23, pp. 3623-3646, 2018.
A. Karmakar, Illathvalappil, R., Anothumakkool, B., Sen, A., Samanta, P., Desai, A. V., Kurungot, S., and Ghosh, S. K., Hydrogen-bonded organic frameworks (HOFs): a new class of porous crystalline proton-conducting materials, Angewandte Chemie-International Edition, vol. 55, no. 36, pp. 10667-10671, 2016.
E. Balaraman and Milstein, D., Hydrogenation of polar bonds catalysed by ruthenium-pincer complexes, Ruthenium in Catalysis, vol. 48, pp. 19-43, 2014.
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.
V. R. Choudhary, Samanta, C., and Jana, P., Hydrogenation of hydrogen peroxide over palladium/carbon in aqueous acidic medium containing different halide anions under static/flowing hydrogen, Industrial & Engineering Chemistry Research, vol. 46, no. 10, pp. 3237-3242, 2007.
A. S. Nagpure, Gurrala, L., Gogoi, P., and Chilukuri, S. V., Hydrogenation of cinnamaldehyde to hydrocinnamaldehyde over Pd nanoparticles deposited on nitrogen-doped mesoporous carbon, RSC Advances, vol. 6, no. 50, pp. 44333-44340, 2016.
J. M. Nadgeri, Telkar, M. M., and Rode, C. V., Hydrogenation activity and selectivity behavior of supported palladium nanoparticles, Catalysis Communications, vol. 9, no. 3, pp. 441-446, 2008.
H. Prakash Veluswamy, Kumar, R., and Linga, P., Hydrogen storage in clathrate hydrates: Current state of the art and future directions, Applied Energy, vol. 122, pp. 112-132, 2014.
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.
G. Nahar, Mote, D., and Dupont, V., Hydrogen production from reforming of biogas: review of technological advances and an Indian perspective, Renewable and Sustainable Energy Reviews, vol. 76, pp. 1032-1052, 2017.
A. Jha, Jeong, D. - W., Shim, J. - O., Jang, W. - J., Lee, Y. - L., Rode, C. V., and Roh, H. - S., Hydrogen production by the water-gas shift reaction using CuNi/Fe2O3 catalyst, Catalysis Science & Technology, vol. 5, no. 5, pp. 2752-2760, 2015.
V. R. Choudhary and Samanta, C., Hydrogen peroxide formation in the interaction of oxygen with boron-containing Pd catalysts prereduced by hydrazine in aqueous acidic medium containing bromide anions, Catalysis Letters, vol. 99, no. 1-2, pp. 79-81, 2005.
G. R. Kale and Kulkarni, B. D., Hydrogen generation with CO2 utilization: a solvay cluster study, International Journal of Hydrogen Energy, vol. 38, no. 6, pp. 2624-2633, 2013.
A. Bajpai, Mehta, S., Joshi, K., and Kumar, S., Hydrogen from catalytic non-thermal plasma-assisted steam methane reforming reaction, International Journal of Hydrogen Energy, vol. 48, no. 63, pp. 24328-24341, 2023.
P. A. Mangrulkar, Joshi, M. V., Kamble, S. P., Labhsetwar, N. K., and Rayalu, S. S., Hydrogen evolution by a low cost photocatalyst: bauxite residue, International Journal of Hydrogen Energy, vol. 35, no. 20, pp. 10859-10866, 2010.
M. S. Deshpande, Kumbhar, A. S., and Puranik, V. G., Hydrogen bonding-directed metallosupramolecular structural motifs based on a peripheral urea fused bipyridine tecton, Crystal Growth & Design, vol. 8, no. 6, pp. 1952-1960, 2008.
H. Agarwalla, Jana, K., Maity, A., Kesharwani, M. K., Ganguly, B., and Das, A., Hydrogen bonding interaction between active methylene hydrogen atoms and an anion as a binding motif for anion recognition: experimental studies and theoretical rationalization, Journal of Physical Chemistry A, vol. 118, no. 14, pp. 2656–2666, 2014.
S. S. Satav, Karmalkar, R. N., Kulkarni, M. G., Mulpuri, N., and G. Sastry, N., Hydrogen bonding in trivinyl monomers: implications for inclusion complexation and polymerization, Macromolecules, vol. 40, no. 6, pp. 1824-1830, 2007.
N. R. Mote and Chikkali, S. H., Hydrogen bonding assissted supramolecular metal catalysis, Chemistry - an Asian Journal , vol. 13, no. 23, pp. 3623-3646, 2018.
V. D. Deepak, Rajan, J., and Asha, S. K., Hydrogen bonding and rate enhancement in the photoinduced polymerization of telechelic urethane methacrylates based on a cycloaliphatic system: tricyclodecane dimethanol, Journal of Polymer Science Part A-Polymer Chemistry, vol. 44, no. 15, pp. 4384–4395, 2006.
S. Varughese and Pedireddi, V. R., Hydrogen bond mediated open-frame networks in coordination polymers: supramolecular assemblies of Pr(III) and 3,5-dinitro-4-methylbenzoic acid with aza-donor compounds, Chemical Communications, no. 14, pp. 1824-1826, 2005.
V. A. Kawade, Kumbhar, A. S., Erxleben, A., Pachfule, P., and Banerjee, R., Hydrogen bond directed honeycomb-like porous network structure of tris (bipyridyl-glycoluril)cobalt(III) chloride, Crystengcomm, vol. 13, no. 17, pp. 5289-5291, 2011.
A. Dey, Dana, J., Aute, S., Das, A., and Ghosh, H. N., Hydrogen bond assisted photoinduced intramolecular electron transfer and proton coupled electron transfer in an ultrafast time domain using a ruthenium-anthraquinone dyad, Photochemical & Photobiological Sciences, vol. 18, no. 10, pp. 2430-2441, 2019.
S. Verma, Aute, S., Das, A., and Ghosh, H. N., Hydrogen bond and ligand dissociation dynamics in fluoride sensing of Re(I)-polypyridyl complex, Journal of Physical Chemistry B, vol. 119, no. 47, pp. 14952-14958, 2015.
D. Manzoor and Pal, S., Hydrogen atom chemisorbed gold clusters as highly active catalysts for oxygen activation and co oxidation, Journal of Physical Chemistry C, vol. 118, no. 51, pp. 30057-30062, 2014.
M. Dixit, Major, D. Thomas, and Pal, S., Hydrogen adsorption in ZIF-7: A DFT and ab-initio molecular dynamics study, Chemical Physics Letters, vol. 651, pp. 178-182, 2016.
Goudappagouda, Wakchaure, V. C., Ranjeesh, K. C., and Babu, S. S., Hydrogel-derived soft materials for biomimetic and energy-related functions, Australian Journal of Chemistry, vol. 69, no. 1, pp. 2-7, 2016.
N. S. Pagar, Deshpande, R. M., and Chaudhari, R. V., Hydroformylation of olefins using dispersed molecular catalysts on solid supports, Catalysis Letters, vol. 110, no. 1-2, pp. 129-133, 2006.
R. Kumar and Chikkali, S. H., Hydroformylation of olefins by metals other than rhodium, Journal of Organometallic Chemistry, vol. 960, p. 122231, 2022.
A. Sharma, Lebigue, C. Julcour, Deshpande, R. Madhukar, Kelkar, A. A., and Delmas, H., Hydroformylation of 1-octene using [Bmim][PF6]-decane biphasic media and rhodium complex catalyst: thermodynamic properties and kinetic study, Industrial & Engineering Chemistry Research, vol. 49, no. 21, pp. 10698-10706, 2010.
M. M. Diwakar, Deshpande, R. M., and Chaudhari, R. V., Hydroformylation of 1-hexene using Rh/TPPTS complex exchanged on anion exchange resin: kinetic studies, Journal of Molecular Catalysis A-Chemical, vol. 232, no. 1-2, pp. 179-186, 2005.
R. Chansarkar, Kelkar, A. A., and Chaudhari, R. V., Hydroformylation of 1,4-diacetoxy-2-butene using HRh(CO)(PPh3)(3) tethered on alumina as a catalyst: kinetic study, Industrial & Engineering Chemistry Research, vol. 48, no. 21, pp. 9479-9489, 2009.
S. B. Atla, Kelkar, A. A., and Chaudhari, R. V., Hydroesterification of 2-vinyl-6-methoxynaphthalene using palladium complexes containing chelating nitrogen ligands, Journal of Molecular Catalysis A-Chemical, vol. 307, no. 1-2, pp. 134-141, 2009.
P. R. Gunjal, Kashid, M. N., Ranade, V. V., and Chaudhari, R. V., Hydrodynamics of trickle-bed reactors: experiments and CFD modeling, Industrial & Engineering Chemistry Research, vol. 44, no. 16, pp. 6278-6294, 2005.
M. Jose Nieves-Remacha, Kulkarni, A. A., and Jensen, K. F., Hydrodynamics of liquid-liquid dispersion in an advanced-flow reactor, Industrial & Engineering Chemistry Research, vol. 51, no. 50, pp. 16251-16262, 2012.
M. R. Rampure, Kulkarni, A. A., and Ranade, V. V., Hydrodynamics of bubble column reactors at high gas velocity: experiments and computational fluid dynamics (CFD) Simulations, Industrial & Engineering Chemistry Research, vol. 46, no. 25, pp. 8431-8447, 2007.
C. A. Shukla, Pal, S., and Kulkarni, A. A., Hydrodynamics and selectivity engineering of a multipoint dosing flow reactor, Industrial & Engineering Chemistry Research, vol. 58, no. 51, p. 22874, 2019.
A. A. Kulkarni, Gorasia, A. K., and Ranade, V. V., Hydrodynamics and liquid phase residence time distribution in mesh microreactor, Chemical Engineering Science, vol. 62, no. 24, pp. 7484-7493, 2007.
P. Jain, Bhandari, V. M., Balapure, K., Jena, J., Ranade, V. V., and Killedar, D. J., Hydrodynamic cavitation using vortex diode: an efficient approach for elimination of pathogenic bacteria from water, Journal of Environmental Management, vol. 242, pp. 210-219, 2019.
S. Janampelli and Darbha, S., Hydrodeoxygenation of vegetable oils and fatty acids over different group VIII metal catalysts for producing biofuels, Catalysis Surveys From Asia, vol. 23, pp. 90-101, 2019.
R. R. Shetty, Raut, S. S., Kulkarni, P. S., and Kamble, S. P., Hydrodechlorination of 4-chloro-2-aminophenol into a recyclable product using Ni- and Cu-based catalysts, Industrial & Engineering Chemistry Research, vol. 61, no. 39, pp. 14433-14445, 2022.
S. Chatterjee, Ghosh, D., Haldar, T., Deb, P., Sakpal, S. S., Deshmukh, S. H., Kashid, S. M., and Bagchi, S., Hydrocarbon chain-length dependence of solvation dynamics in alcohol-based deep eutectic solvents: a two-dimensional infrared spectroscopic investigation, Journal of Physical Chemistry B, vol. 123, no. 44, pp. 9355-9363, 2019.
S. S. Puranik, Joshi, H. M., Ogale, S. B., and Paknikar, K. M., Hydrazine based facile synthesis and ordered assembly of metal nanoparticles (Au, Ag) on a bacterial surface layer protein template, Journal of Nanoscience and Nanotechnology, vol. 8, no. 7, pp. 3565-3569, 2008.
S. Munirasu, Deshpande, A., and Baskaran, D., Hydrated clay for catalyst removal in copper mediated atom transfer radical polymerization(a), Macromolecular Rapid Communications, vol. 29, no. 18, pp. 1538-1543, 2008.
A. Arora, Kumar, A., Bhattacharjee, G., Balomajumder, C., and Kumar, P., Hydrate-based carbon capture process: assessment of various packed bed systems for boosted kinetics of hydrate formation, Journal of Energy Resources Technology-Transactions of the ASME, vol. 143, no. 3, p. 033005, 2021.
P. Babu, Yang, T., Veluswamy, H. Prakash, Kumar, R., and Linga, P., Hydrate phase equilibrium of ternary gas mixtures containing carbon dioxide, hydrogen and propane, Journal of Chemical Thermodynamics, vol. 61, pp. 58-63, 2013.
K. B. Batkulwar, Jana, A. K., Godbole, R. K., Khandelwal, P., Sengupta, N., and Kulkarni, M. J., Hydralazine inhibits amyloid beta (Aβ) aggregation and glycation and ameliorates Aβ1–42 induced neurotoxicity, RSC Advances, vol. 6, pp. 108768-108776, 2016.
M. M. Pisal, Nawale, L. U., Patil, M., Bhansali, S. G., Gajbhiye, J. M., Sarkar, D., Chavan, S. P., and Borate, H. B., Hybrids of thienopyrimidinones and thiouracils as anti-tubercular agents: SAR and docking studies, European Journal of Medicinal Chemistry, vol. 127, 2017.
R. Naphade, Nagane, S., G. Shanker, S., Fernandes, R., Kothari, D., Zhou, Y., Padture, N. P., and Ogale, S., Hybrid perovskite quantum nanostructures synthesized by electrospray antisolvent-solvent extraction and intercalation, ACS Applied Materials & Interfaces, vol. 8, no. 1, pp. 854-861, 2016.
U. P. Bansode, Naphade, R., Game, O. S., Agarkar, S. A., and Ogale, S., Hybrid perovskite films by a new variant of pulsed excimer laser deposition: a room-temperature dry process, Journal of Physical Chemistry C, vol. 119, no. 17, pp. 9177-9185, 2015.
U. D. Pete, Zade, C. M., Bhosale, J. D., Tupe, S. G., Chaudhary, P. M., Dikundwar, A. G., and Bendre, R. S., Hybrid molecules of carvacrol and benzoyl urea/thiourea with potential applications in agriculture and medicine, Bioorganic & Medicinal Chemistry Letters, vol. 22, no. 17, pp. 5550-5554, 2012.
S. Yadav, Rajpurohit, D., Dash, S. Ranjan, Bhojani, G., Chatterjee, S., and Paital, A. Ranjan, Hybrid material for ferric ion detection & remediation: exceptional selectivity & adsorption capacity with biological applications, Microporous and Mesoporous Materials, vol. 338, p. 111945, 2022.
D. Srinivas, Gonnade, R. G., Ravindranathan, S., and Sanjayan, G. J., Hybrid foldamer with unique architecture from conformationally constrained aliphatic-aromatic amino acid conjugate, Tetrahedron, vol. 62, no. 43, pp. 10141-10146, 2006.
D. Ghosh, Hybrid equation-of-motion coupled-cluster/effective fragment potential method: a route toward understanding photoprocesses in the condensed phase, Journal of Physical Chemistry A, vol. 121, no. 4, pp. 741-752, 2017.
S. H. Chikkali, van der Vlugt, J. Ivar, and Reek, J. N. H., Hybrid diphosphorus ligands in rhodium catalysed asymmetric hydroformylation, Coordination Chemistry Reviews, vol. 262, pp. 1-15, 2014.
A. Guchhait, Rath, A. Kumar, and Pal, A. J., Hybrid core-shell nanoparticles: photoinduced electron-transfer for charge separation and solar cell application, Chemistry of Materials, vol. 21, no. 21, pp. 5292–5299, 2009.

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