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S. Kumari, Haring, M., Gupta, S. Sen, and Diaz, D. Diaz, Catalytic macroporous biohydrogels made of ferritin-encapsulated gold nanoparticles, Chempluschem, vol. 82, no. 2, pp. 225-232, 2017.
S. Shinde and Deshpande, R. M., Catalytic hydrogenation products of aromatic and aliphatic dicarboxylic acids, Asian Journal of Chemistry, vol. 31, no. 5, pp. 1137-1142, 2019.
S. Shinde and Deshpande, R. M., Catalytic hydrogenation of cinnamic acid and salicylic acid, Asian Journal of Chemistry, vol. 32, no. 2, pp. 339-341, 2020.
C. V. Rode, Catalytic hydrogenation of 2-butyne-1,4-diol: activity, selectivity and kinetics studies, Journal of the Japan Petroleum Institute, vol. 51, no. 3, pp. 119-133, 2008.
A. B. Gade and Patil, N. T., Catalytic enantioselective aza-piancatelli rearrangement, Synlett, vol. 28, no. 9, pp. 1096-1100, 2017.
A. B. Gade, Bagle, P. N., Shinde, P. S., Bhardwaj, V., Banerjee, S., Chande, A., and Patil, N. T., Catalytic enantioselective 1,3-alkyl shift in alkyl aryl ethers: efficient synthesis of optically active 3,3 '-diaryloxindoles, Angewandte Chemie-International Edition, vol. 57, no. 20, pp. 5735-5739, 2018.
R. Ahuja, Punji, B., Findlater, M., Supplee, C., Schinski, W., Brookhart, M., and Goldman, A. S., Catalytic dehydroaromatization of n-alkanes by pincer-ligated iridium complexes, Nature Chemistry, vol. 3, no. 2, pp. 167–171, 2011.
V. C. Ghantani, Lomate, S. T., Dongare, M. K., and Umbarkar, S. B., Catalytic dehydration of lactic acid to acrylic acid using calcium hydroxyapatite catalysts, Green Chemistry, vol. 15, no. 5, pp. 1211-1217, 2013.
R. Raut, Banakar, V. V., and Darbha, S., Catalytic decarboxylation of non-edible oils over three-dimensional, mesoporous silica-supported Pd, Journal of Molecular Catalysis A-Chemical, vol. 417, pp. 126-134, 2016.
S. Sreekantan, Kirali, A. Arunima Ba, and Marimuthu, B., Catalytic conversion of sucrose to 1,2-propanediol over alumina-supported Ni-Mo bimetallic catalysts, Sustainable Energy & Fuels, vol. 6, no. 15, pp. 3681-3689, 2022.
P. A. Chithra and Darbha, S., Catalytic conversion of HMF into ethyl levulinate - a biofuel over hierarchical zeolites, Catalysis Communications, vol. 140, p. 105998, 2020.
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.
P. Dhepe, Tomishige, K., and Wu, K. C. - W., Catalytic conversion of biomass, Chemcatchem, vol. 9, no. 14, pp. 2613-2614, 2017.
A. H. Bansode, Chimala, P., and Patil, N. T., Catalytic branching cascades in diversity oriented synthesis, ChemCatChem, vol. 9, no. 1, pp. 30-40, 2017.
P. Sudarsanam, Catalytic biomass valorization - status and perspectives, Biomass Conversion and Biorefinery, vol. 10, no. 4, p. 793, 2020.
S. H. Deshpande, Kelkar, A. A., Gonnade, R. G., Shingote, S. K., and Chaudhari, R. V., Catalytic asymmetric transfer hydrogenation of ketones using [Ru(p-cymene)Cl-2](2) with chiral amino alcohol ligands, Catalysis Letters, vol. 138, no. 3-4, pp. 231-238, 2010.
A. S. Burange and Gopinath, C. S., Catalytic applications of hydrotalcite and related materials in multi -component reactions: concepts, challenges and future scope, Sustainable Chemistry and Pharmacy, vol. 22, p. 100458, 2021.
D. Patel, Thakur, S. S., Shinde, S. S., and Kumar, P., Catalytic and efficient synthesis of optically active terminal epoxides and 1,2-diols using a new lanthanum triflate assisted C1-symmetric bimetallic chiral salen cobalt complex, Letters in Organic Chemistry, vol. 15 , no. 11, pp. 960 - 966, 2018.
K. N. Tayade, Mane, M. V., Sen, S., Murthy, C. N., Tembe, G. L., S. Pillai, M., Vanka, K., and Mukherjee, S., Catalytic and DFT study of selective ethylene oligomerization by nickel(II) oxime-based complexes, Journal of Molecular Catalysis A-Chemical, vol. 366, pp. 238-246, 2013.
A. P. Singh, Torita, N., Shylesh, S., Iwasa, N., and Arai, M., Catalytic aerobic oxidation of cyclohexane and ethyl benzene over chromium-containing mesoporous organosilicas, Catalysis Letters, vol. 132, no. 3-4, pp. 492-499, 2009.
M. Zhu, Srinivas, D., Bhogeswararao, S., Ratnasamy, P., and Carreon, M. A., Catalytic activity of ZIF-8 in the synthesis of styrene carbonate from CO2 and styrene oxide, Catalysis Communications, vol. 32, pp. 36-40, 2013.
R. M. Dange, Niphadkar, P. S., Bokade, V. V., and Nandanwar, S. U., Catalytic activity of CuFe2O4 spinel oxide for liquid-phase oxidation of cinnamyl alcohol, ChemistrySelect, vol. 7, no. 8, p. e202104441, 2022.
S. S. Bhoware, Kamble, K. R., and Singh, A. P., Catalytic activity of cobalt containing MCM-41 and HMS in liquid phase oxidation of diphenylmethane, Catalysis Letters, vol. 133, no. 1-2, pp. 106-111, 2009.
A. M. Kalekar, Sharma, K. Kumar K., Luwang, M. Niraj, and Sharma, G. K., Catalytic activity of bare and porous palladium nanostructures in the reduction of 4-nitrophenol, RSC Advances, vol. 6, no. 14, pp. 11911-11920, 2016.
A. Ghosh, Mane, M. V., Rode, H. B., Patil, S. A., Sridhar, B., and Dateer, R. B., Catalyst-free regioselective [3+2] cycloadditions of alpha,beta-unsaturated N-arylnitrones with alkenes to access functionalized isoxazolidines: a DFT study, Chemistry-An Asian Journal, vol. 15, no. 6, pp. 899-903, 2020.
R. V. Kupwade, Khot, S. S., Lad, U. P., Desai, U. V., and Wadgaonkar, P. P., Catalyst-free oxidation of sulfides to sulfoxides and diethylamine catalyzed oxidation of sulfides to sulfones using Oxone as an oxidant (vol 43, pg 6875, 2017), Research on Chemical Intermediates, vol. 44, no. 2, p. 1437, 2018.
R. V. Kupwade, Khot, S. S., Lad, U. P., Desai, U. V., and Wadgaonkar, P. P., Catalyst-free oxidation of sulfides to sulfoxides and diethylamine catalyzed oxidation of sulfides to sulfones using oxone as an oxidant, Research on Chemical Intermediates, vol. 43, no. 12, pp. 6875-6888, 2017.
T. M. Potewar, Ingale, S. A., and Srinivasan, K. V., Catalyst-free efficient synthesis of 2-aminothiazoles in water at ambient temperature, Tetrahedron, vol. 64, no. 22, pp. 5019-5022, 2008.
A. H. Bansode, Shaikh, A. C., Kavthe, R. D., Thorat, S., Gonnade, R. G., and Patil, N. T., Catalyst-dependent selectivity in the relay catalytic branching cascade, Chemistry-A European Journal, vol. 21, no. 6, pp. 2319-2323, 2015.
N. Mohanta, Samal, P. Paramita, Pandey, A. M., Mondal, S., Krishnamurty, S., and Gnanaprakasam, B., Catalyst-assisted selective vinylation and methylallylation of a quaternary carbon center using tert-butyl acetate, Journal of Organic Chemistry, vol. 88, no. 14, pp. 9686-9703, 2023.
V. Chavan, Watve, A. V., Rane, N. S., and Krishnan, S., Cataloguing Indian biota - Response, Current Science, vol. 88, no. 4, pp. 532-533, 2005.
R. Godbole, Gaur, A., Nayar, P., Kiruthiga, K., D'Costa, P., Manchanda, R., Khilari, A., Shanmugam, D., Muglikar, K. D., and Kundu, K., Case report: a fatal case of babesiosis in a splenectomized male patient from Western India, American Journal of Tropical Medicine and Hygiene, vol. 106, no. 5, pp. 1421-1425, 2022.
S. S. Sakate, Shinde, S. H., Kasar, G. B., Chikate, R. C., and Rode, C. V., Cascade synthesis of dihydrobenzofuran via claisen rearrangement of allyl aryl ethers using FeCl 3 /MCM-41 catalyst, Journal of Saudi Chemical Society, vol. 22, no. 4, pp. 396-404, 2018.
S. Shinde, Deval, K., Chikate, R., and Rode, C., Cascade synthesis of 5-(Acetoxymethyl) furfural from carbohydrates over Sn-mont catalyst, ChemistrySelect, vol. 3, no. 30, pp. 8770-8778, 2018.
S. B. Kamble and Rode, C. V., Cascade synthesis of 2-cyanoacrylamides through deacetalization and/or knoevenagelcondensation followed by selective monohydration of acetals and aldehydes over solid acidferrites, Chemcatchem, vol. 8, no. 16, pp. 2678-2687, 2016.
S. Shinde and Rode, C., Cascade reductive etherification of bioderived aldehydes over Zr-based catalysts, ChemSusChem, vol. 10, no. 20, pp. 4090-4101, 2017.
Goudappagouda, Wakchaure, V. Chandrakan, Ranjeesh, K. Chandran, Abhai, C. Antony Ral, and Babu, S. Santhosh, Cascade energy transfer and tunable emission from nanosheet hybrids: locating acceptor molecules through chiral doping, Chemical Communications, vol. 53, no. 52, pp. 7072-7075, 2017.
Goudappagouda, Wakchaure, V. Chandrakan, Ranjeesh, K. Chandran, Abhai, C. Antony Ral, and Babu, S. Santhosh, Cascade energy transfer and tunable emission from nanosheet hybrids: locating acceptor molecules through chiral doping (vol 53, pg 7072, 2017), Chemical Communications, vol. 55, no. 45, pp. 6462-6462, 2019.
R. Pandya, Mane, R., and Rode, C. V., Cascade dehydrative amination of glycerol to oxazoline (vol 8, pg 2954, 2018), Catalysis Science & Technology, vol. 10, no. 19, p. 6740, 2020.
R. Pandya, Mane, R., and Rode, C. V., Cascade dehydrative amination of glycerol to oxazoline, Catalysis Science & Technology, vol. 8, no. 11, pp. 2954-2965, 2018.
S. Talekar, Pandharbale, A., Ladole, M., Nadar, S., Mulla, M., Japhalekar, K., Pattankude, K., and Arage, D., Carrier free co-immobilization of alpha amylase, glucoamylase and pullulanase as combined cross-linked enzyme aggregates (combi-CLEAs): a tri-enzyme biocatalyst with one pot starch hydrolytic activity, Bioresource Technology, vol. 147, pp. 269-275, 2013.
K. Makwana, Ichake, A. B., Valodkar, V., Padmanaban, G., Badiger, M. V., and Wadgaonkar, P. P., Cardol: Cashew nut shell liquid (CNSL) - derived starting material for the preparation of partially bio-based epoxy resins, European Polymer Journal, vol. 166, p. 111029, 2022.
N. Tiwari, Nawale, L. U., Sarkar, D., and Badiger, M. V., Carboxymethyl cellulose-grafted mesoporous silica hybrid nanogels for enhanced cellular uptake and release of curcumin, Gels, vol. 3, no. 1, 2017.
P. Nigam Joshi, Wangnoo, S., and Louis, M., Carboxymethyl cellulose based multifunctional targeted drug delivery platform for pancreatic cancer: nanotheranostic potential and biocompatibility analysis, World Journal of Pharmaceutical Sciences, vol. 3, no. 7, pp. 1347-1359, 2015.
A. Balamurugan, Reddy, M. L. P., and Jayakannan, M., Carboxylic-functionalized water soluble pi-conjugated polymer: highly selective and efficient chemosensor for mercury(II) ions, Journal of Polymer Science Part A-Polymer Chemistry, vol. 47, no. 19, pp. 5144-5157, 2009.
V. V. E. Ramesh, Kale, S. S., Kotmale, A. S., Gawade, R. L., Puranik, V. G., Rajamohanan, P. R., and Sanjayan, G. J., Carboxamide versus sulfonamide in peptide backbone folding: a case study with a hetero foldamer, Organic Letters, vol. 15, no. 7, pp. 1504-1507, 2013.
S. E. Kondawar, Mane, R. B., Vasishta, A., More, S. B., Dhengale, S. D., and Rode, C. V., Carbonylation of glycerol with urea to glycerol carbonate over supported Zn catalysts, Applied Petrochemical Research, vol. 7, no. 1, 2017.
B. R. Sarkar and Chaudhari, R. V., Carbonylation of alkynes, alkenes and alcohols using metal complex catalysts, Catalysis Surveys from Asia, vol. 9, no. 3, pp. 193-205, 2005.
V. Nair, Biju, A. T., Mathew, S. C., and Pattoorpadi, B. Babu, Carbon-nitrogen bond-forming reactions of dialkyl azodicarboxylate: a promising synthetic strategy, Chemistry an Asian Journal, vol. 3, no. 5, pp. 810–820, 2008.
V. R. Choudhary, Mondal, K. C., Mamman, A. Singh, and Joshi, U. A., Carbon-free dry reforming of methane to syngas over NdCoO3 perovskite-type mixed metal oxide catalyst, Catalysis Letters, vol. 100, no. 3-4, pp. 271-276, 2005.
C. Singh, Jawade, K., Sharma, P., Singh, A. P., and Kumar, P., Carbon-carbon bond forming reactions: application of covalently anchored 2,4,6-triallyloxy-1,3,5-triazine (TAT) Pd(II) complex over modified surface of SBA-15 to Heck, Suzuki, Sonogashira and Hiyama cross coupling reactions, Catalysis Communications, vol. 69, pp. 11-15, 2015.
I. L. Simakova, Demidova, Y. S., Simonov, M. N., Niphadkar, P. S., Bokade, V. V., Devi, N., Dhepe, P. L., and Murzin, D. Yu, Carbon supported size-controlled ru catalysts for selective levulinic acid hydrogenation into γ-valerolactone, Journal of Siberian Federal University-Chemistry, vol. 13, no. 1, pp. 5-16, 2020.
S. Singh, Nigam, P., Pednekar, A., Mukherjee, S., and Mishra, A., Carbon quantum dots functionalized agarose gel matrix for in solution detection of nonylphenol, Environmental Technology, vol. 41, no. 3, pp. 322-328, 2020.
M. Parthasarathy, Debgupta, J., Kakade, B. A., Ansary, A. Ayoobul, Khan, M. Islam, and Pillai, V. K., Carbon nanotube-modified sodium dodecyl sulfate-polyacrylamide gel electrophoresis for molecular weight determination of proteins, Analytical Biochemistry, vol. 409, no. 2, pp. 230-235, 2011.
P. Yadav, Warule, S., Jog, J. Prakash, and Ogale, S. B., Carbon nanoscrolls by pyrolysis of a polymer, Solid State Communications, vol. 152, no. 23, pp. 2092-2095, 2012.
S. K. M. Unni, Illathvalappil, R., Bhange, S. N., Puthenpediakkal, H., and Kurungot, S., Carbon nanohorn-derived graphene nanotubes as a platinum-free fuel cell cathode, ACS Applied Materials & Interfaces, vol. 7, no. 43, pp. 24256-24264, 2015.
B. K. Balan, Chaudhari, H. D., Kharul, U. K., and Kurungot, S., Carbon nanofiber-RuO2-poly(benzimidazole) ternary hybrids for improved supercapacitor performance, RSC Advances, vol. 3, no. 7, pp. 2428-2436, 2013.
B. K. Balan, Unni, S. K. M., and Kurungot, S., Carbon nanofiber with selectively decorated pt both on inner and outer walls as an efficient electrocatalyst for fuel cell applications, Journal of Physical Chemistry C, vol. 113, no. 40, pp. 17572-17578, 2009.
A. D. Jadhav, Ogale, S. B., and Prasad, B. L. V., Carbon nano horn and bovine serum albumin hierarchical composite: towards bio-friendly superhydrophobic protein film surfaces, Journal of Materials Chemistry, vol. 18, no. 29, pp. 3422-3425, 2008.
M. W. Higgins, Rahmaan, S. A. R., Devarapalli, R. Reddy, Shelke, M. V., and Jha, N., Carbon fabric based solar steam generation for waste water treatment, Solar Energy, vol. 159, pp. 800-810, 2018.
V. Chaturvedi, Pawar, M., Thripuranthaka, M., Shivade, R., and Shelke, M. V. V., Carbon encapsulated NiCo2S4 nanoparticles with enhanced surface mediated charge storage for superior ultracapacitor electrodes, Chemistry-An Asian Journal, vol. 18, no. 8, 2023.
M. Bowker, Counsell, J., El-Abiary, K., Gilbert, L., Morgan, C., Nagarajan, S., and Gopinath, C. S., Carbon dissolution and segregation in Pd(110), Journal of Physical Chemistry C, vol. 114, no. 11, pp. 5060-5067, 2010.
G. Bhattacharjee, Kumar, A., Sakpal, T., and Kumar, R., Carbon dioxide sequestration: influence of porous media on hydrate formation kinetics, ACS Sustainable Chemistry & Engineering, vol. 3, no. 6, pp. 1205-1214, 2015.
H. R. Gurav, Bobade, R., Das, V. Lakshmi, and Chilukuri, S. V., Carbon dioxide reforming of methane over ruthenium substituted strontium titanate perovskite catalysts, Indian Journal of Chemistry Section A-Inorganic Bio-Inorganic Physical Theoretical & Analytical Chemistry, vol. 51, no. 9-10, pp. 1339-1347, 2012.
T. Sakpal, Kumar, A., Kamble, S., and Kumar, R., Carbon dioxide capture using amine functionalized silica gel, Indian Journal of Chemistry Section A-Inorganic Bio-Inorganic Physical Theoretical & Analytical Chemistry, vol. 51, no. 9-10, pp. 1214-1222, 2012.
S. Saha, Chandra, S., Garai, B., and Banerjee, R., Carbon dioxide capture by metal organic frameworks, Indian Journal of Chemistry Section A-Inorganic Bio-Inorganic Physical Theoretical & Analytical Chemistry, vol. 51, no. 9, pp. 1223-1230, 2012.
D. Chakraborty, Nandi, S., Illathvalappil, R., Mullangi, D., Maity, R., Singh, S. K., Haldar, S., Vinod, C. P., Kurungot, S., and Vaidhyanathan, R., Carbon derived from soft pyrolysis of a covalent organic framework as a support for small-sized RuO2 showing exceptionally low overpotential for oxygen evolution reaction, ACS Omega, vol. 4, no. 8, pp. 13465-13473, 2019.
M. Mathew, Dominic, C. D. Midhun, Neenu, K. V., Begum, P. M. Sabura, Dileep, P., Kumar, T. G. Ajith, Sabu, A. Alax, Nagane, D., Parameswaranpillai, J., and Badawi, M., Carbon black and chitin nanofibers for green tyres: preparation and property evaluation, Carbohydrate Polymers, vol. 310, p. 120700, 2023.
G. Sharma, Carbon allotropes: metal-complex chemistry, properties and applications, MRS Bulletin, vol. 45, no. 8, p. 678, 2020.
V. V. E. Ramesh, Puranik, V. G., and Sanjayan, G. J., Carbohydrate-derived conformationally restricted bicyclic dipeptides as potential hetero foldamer building blocks, Tetrahedron-Asymmetry, vol. 23, no. 18-19, pp. 1400-1404, 2012.
M. K. Gurjar, Yellol, G. S., and Mohapatra, D. K., Carbohydrate-based synthesis of the C13-C22 fragment of amphidinolide X, European Journal of Organic Chemistry, no. 9, pp. 1753-1758, 2012.
C. V. Ramana, Raghupathi, N., Gurjar, M. K., and Chorghade, M. S., Carbohydrate-based approach for the total synthesis of strictifolione, Tetrahedron Letters, vol. 46, no. 23, pp. 4073-4075, 2005.
C. V. Ramana and Srinivas, B., Carbohydrate-based approach for the total synthesis of aculeatin D and 6-epi-aculeatin D, Journal of Organic Chemistry, vol. 73, no. 10, pp. 3915-3918, 2008.
C. V. Ramana, Srinivas, B., Puranik, V. G., and Gurjar, M. K., Carbohydrate-based approach for the total synthesis of 1,3-polyol/alpha-pyrone antifungal natural products, Journal of Organic Chemistry, vol. 70, no. 20, pp. 8216-8219, 2005.
D. K. Mohapatra, Sahoo, G., Sankar, K., and Gurjar, M. K., Carbohydrate templates for the synthesis of prototype renin inhibitors, Tetrahedron-Asymmetry, vol. 19, no. 18, pp. 2123-2129, 2008.
R. Ahamed, Venkatesh, J., Srithar, R., Gaikwad, S., and Pramanik, S., Carbohydrate recognition using metal-ligand assemblies, Organic & Biomolecular Chemistry, vol. 21, no. 27, pp. 5492-5505, 2023.
R. Pal, Rahaman, H., and Gurjar, M. K., Carbohydrate based total synthesis of xestodecalactone B and C: revision of the absolute configuration, Current Organic Chemistry, vol. 16, no. 9, pp. 1159-1168, 2012.
C. V. Ramana, Mondal, M. A., Puranik, V. G., and Gurjar, M. K., Carbohydrate based approach towards the synthesis of aspercyclide C, Tetrahedron Letter, vol. 48, no. 42, pp. 7524-7527, 2007.
M. Ghosh, Tothadi, S., and Khan, S., Carbazole substituted amidinato silylene: synthesis, bonding, and coordination behavior with coinage metals, Organometallics, vol. 40, no. 18, pp. 3201-3210, 2021.
D. Singh, Lakshmi, D., Meena, C. L., Krishna, G. Rama, and Sanjayan, G. J., Carbamate-Protected (BOC and O-NB) 2-Aminopyrimidinedione-based janus G-C nucleobase motifs as building blocks for supramolecular assembly and smart polymers, Journal of organic chemistry , vol. 88, no. 21, pp. 14953-14959, 2023.
V. A. Kumar, CARB 36-Novel and structurally biased backbone modifications of nucleic acids, Abstracts of Papers of the American Chemical Society, vol. 238, p. Meeting Abstract : 36-CARB, 2009.
S. H. Thorat, Patwadkar, M. V., Gonnade, R. G., and Vaidhyanathan, R., Capturing a novel metastable polymorph of the anticancer drug gefitinib, CrystEngComm, vol. 16, no. 37, pp. 8638-8641, 2014.
A. R. Jadhav, War, A. R., Nikam, A. N., Adhav, A. S., Gupta, V. S., Sharma, H. C., Giri, A. P., and Tamhane, V. A., Capsicum annuum proteinase inhibitor ingestion negatively impacts the growth of sorghum pest Chilo partellus and promotes differential protease expression, Biochemistry and Biophysics Reports, vol. 78, pp. 302-309, 2016.
A. A. Qureshi, Qureshi, A. A., Omer, S., Sanghai, D. B., Setty, S. R., and Bhajipale, N. S., Capsaicin: preclinical and clinical studies, Plant Archives, vol. 8, no. 1, pp. 7-11, 2008.
S. Chatterjee, Doshi, P., and Kumaraswamy, G., Capillary uptake in macroporous compressible sponges, Soft Matter, vol. 13, no. 34, 2017.
A. Ghosh, Karne, A. S., Pal, S., and Vaval, N., CAP/EOM-CCSD method for the study of potential curves of resonant states, Physical Chemistry Chemical Physics, vol. 15, no. 41, pp. 17915-17921, 2013.
C. S. Gopinath, Roy, K., and Nagarajan, S., Can we shift and/or broaden the catalysis regime towards ambient temperature?, ChemCatChem, vol. 7, no. 4, pp. 588-594, 2015.
S. Tothadi, Shaikh, T. Rafique, Gupta, S., Dandela, R., Vinod, C. P., and Nangia, A. K., Can we identify the salt-cocrystal continuum state using XPS?, Crystal Growth & Design, vol. 21, no. 2, pp. 735-747, 2021.
S. Jain and Vanka, K., Can the solvent enhance the rate of chemical reactions through C-H/pi interactions? insights from theory, Physical Chemistry Chemical Physics, vol. 21, no. 27, pp. 14821-14831, 2019.
N. Kuriakose and Vanka, K., Can substituted allenes be highly efficient leaving groups in catalytic processes? a computational investigation, Journal of Computational Chemistry, vol. 36, no. 11, pp. 795-804, 2015.
A. Pal and Vanka, K., Can silylenes rival transition metal systems in bond-strengthening pi-back donation? a computational investigation, Chemical Communications, vol. 50, no. 62, pp. 8522-8525, 2014.
A. Kalam Biswas, Das, A., and Ganguly, B., Can silicon substituted metal-free organic dyes achieve better efficiency compared to silicon free organic dyes? a computational study, Physical Chemistry Chemical Physics, vol. 17, no. 46, pp. 31093-31100, 2015.
N. Kuriakose and Vanka, K., Can molecular cages be effective at small molecule activation? a computational investigation, Inorganic Chemistry, vol. 52, no. 8, pp. 4238-4243, 2013.
S. Kumar, Swain, G., and Krishnamoorthy, K., Can metal cations electrocatalyze sulfur redox reaction and suppress polysulfide shuttle?, Batteries & Supercaps, vol. 6, no. 9, 2023.
N. Kuriakose and Vanka, K., Can main group systems act as superior catalysts for dihydrogen generation reactions? A computational investigation, Dalton Transactions, vol. 45, no. 14, pp. 5968-5977, 2016.
T. Singh Verma, Samal, P. Paramita, Selvaraj, K., and Krishnamurty, S., Can Li atoms anchored on boron- and nitrogen-doped graphene catalyze dinitrogen molecules to ammonia? a DFT study, ChemPhysChem, vol. 24, no. 12, 2023.
H. Bajpai, Patra, K. Kumar, Ranjan, R., Nalajala, N., Reddy, K. Prabhakar, and Gopinath, C. S., Can half-a-monolayer of pt simulate activity like that of bulk pt? solar hydrogen activity demonstration with quasi-artificial leaf device, ACS Applied Materials & Interfaces, vol. 12, no. 27, pp. 30420-30430, 2020.
V. Ghormade, Can fungi compete with marine sources for chitosan production?, International Journal of Biological Macromolecules, vol. 104, pp. 1415-1421, 2017.
M. Dubey, Kumar, A., Dhavale, V. M., Kurungot, S., and Pandey, D. Shankar, Can enantiomer ligands produce structurally distinct homochiral MOFs?, CrystEngComm, vol. 17, no. 42, pp. 8202-8206, 2015.
A. S. Nagare, Manna, A., and Kumar, A., Can a diels-alder reaction accelerate in a supersaturated solvent at room temperature?, New Journal of Chemistry, vol. 40, no. 10, pp. 8355-8363, 2016.

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