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M. W. Kasture, Bokade, V. V., and Joshi, P. N., Conversion of fly ash - an environmentally detrimental waste to zeolite beta (BEA) for commercial catalytic applications, Journal of the American Ceramic Society, vol. 88, no. 11, pp. 3260-3263, 2005.
P. Laxmikant Dhepe and Matsagar, B. Mansub, Conversion of hemicellulose using acidic ionic liquids, U.S. Patent PCT/IN2015/0500072014.
A. Bhattacharya, Converting ab initio energies to enthalpies of formation of free radicals. I. new atom equivalents for alkyl radicals, Aiche Journal, vol. 58, no. 2, pp. 600-609, 2012.
S. S. Shaikh, Patil, C. R., Kondawar, S. E., and Rode, C. V., Cooperative acid-base sites of solid Ba-Zr mixed oxide catalyst for efficient isomerization of glucose to fructose in aqueous medium, ChemistrySelect, vol. 5, no. 40, pp. 12505-12513, 2020.
H. Dev Singh, Nandi, S., Chakraborty, D., Singh, K., Vinod, C. P., and Vaidhyanathan, R., Coordination flexibility aided CO2-specific gating in an iron isonicotinate MOF, Chemistry-an Asian Journal, vol. 17, no. 4, p. e202101305, 2022.
B. Dhara, Sappati, S., Singh, S. K., Kurungot, S., Ghosh, P., and Ballav, N., Coordination polymers of Fe(III) and Al(III) ions with TCA ligand: distinctive fluorescence, CO2 uptake, redox-activity and oxygen evolution reaction, Dalton Transactions, vol. 45, no. 16, pp. 6901-6908, 2016.
R. A. Kalgaonkar and Jog, J. Prakash, Copolyester nanocomposites based on carbon nanotubes: reinforcement effect of carbon nanotubes on viscoelastic and dielectric properties of nanocomposites, Polymer International, vol. 57, no. 1, pp. 114-123, 2008.
T. E. Sandhya, Ramesh, C., and Sivaram, S., Copolyesters based on poly(butylene terephthalate)s containing cyclohexyl and cyclopentyl ring: Effect of molecular structure on thermal and crystallization behavior, Macromolecules, vol. 40, no. 19, pp. 6906-6915, 2007.
A. K. Pandey and Garnaik, B., Copolymerization of aleuritic acid with l-lactic acid and study the aggregation behavior in different solvents, International Journal of Research in Pharmacy and Chemistry, vol. 3, no. 2, 2013.
I. Matos, Fernandes, S. N., Liu, H. - R., Tevtia, A. K., Singh, R. P., Manda, L., Lemos, F., and Marques, M. M., Copolymerization of ethylene with unsaturated alcohols and methylmethacrylate using a silylated alpha-diimine nickel catalyst: molecular modeling and photodegradation studies, Journal of Applied Polymer Science, vol. 129, no. 4, pp. 1820-1832, 2013.
S. Singh, Chithiravel, S., and Krishnamoorthy, K., Copolymers comprising monomers with various dipole and quadrupole as active material in organic field effect transistors, Journal of Physical Chemistry C, vol. 120, no. 46, pp. 26199-26205, 2016.
S. Kochrekar, Kalekar, A., Mehta, S., Damlin, P., Salomaki, M., Granroth, S., Meltola, N., Joshi, K., and Kvarnstrom, C., Copolymers of bipyridinium and metal (Zn & Ni) porphyrin derivatives; theoretical insights and electrochemical activity towards CO2, RSC Advances, vol. 11, no. 32, pp. 19844-19855, 2021.
A. K. Pandey, Copolymerzation of L,L-lactide with epsilon-caprolactone by using novel zinc L-proline organometallic catalyst, E-Polymers, p. 139, 2010.
A. R. Gholap, Venkatesan, K., Pasricha, R., Daniel, T., Lahoti, R. J., and Srinivasan, K. V., Copper- and ligand-free sonogashira reaction catalyzed by Pd(0) nanoparticles at ambient conditions under ultrasound irradiation, Journal of Organic Chemistry, vol. 70, no. 12, pp. 4869-4872, 2005.
U. N. Patel and Punji, B., Copper- and phosphine-free nickel(II)-catalyzed method for C-H bond alkynylation of benzothiazoles and related azoles, Asian Journal of Organic Chemistry, vol. 7, no. 7, pp. 1390-1395, 2018.
N. G. Patil, Basutkar, N. B., and Ambade, A. V., Copper and silver nanoparticles stabilized by bistriazole-based dendritic amphiphile micelles for 4-nitrophenol reduction, New Journal of Chemistry, vol. 41, no. 11, pp. 4546-4554, 2017.
M. Chauhan, Reddy, K. Prabhakar, Gopinath, C. S., and Deka, S., Copper Cobalt Sulfide Nanosheets Realizing a Promising Electrocatalytic Oxygen Evolution Reaction, ACS Catalysis, vol. 7, no. 9, 2017.
B. Punji, Mague, J. T., Mobin, S. M., and Balakrishna, M. S., Copper (I) complexes of a thioether-functionalized short-bite aminobis(phosphonite), Polyhedron, vol. 28, no. 1, pp. 101–106, 2009.
S. S. Palimkar, P. Kumar, H., Jogdand, N. R., Daniel, T., Lahoti, R. J., and Srinivasan, K. V., Copper-, ligand- and solvent-free synthesis of ynones by coupling acid chlorides with terminal alkynes, Tetrahedron Letters, vol. 47, no. 31, pp. 5527-5530, 2006.
C. V. Rode, Mane, R. B., Potdar, A. S., Patil, P. B., Niphadkar, P. S., and Joshi, P. N., Copper modified waste fly ash as a promising catalyst for glycerol hydrogenolysis, Catalysis Today, vol. 190, no. 1, pp. 31-37, 2012.
H. Maaoui, Singh, S. K., Teodorescu, F., Coffinier, Y., Barras, A., Chtourou, R., Kurungot, S., Szunerits, S., and Boukherroub, R., Copper oxide supported on three-dimensional ammonia-doped porous reduced graphene oxide prepared through electrophoretic deposition for non-enzymatic glucose sensing, Electrochimica Acta, vol. 224, pp. 346-354, 2017.
K. R. Patil, Sathaye, S. D., Hawaldar, R. R., Sathe, B. R., Mandale, A. B., and Mitra, A., Copper phthalocyanine films deposited by liquid-liquid interface recrystallization technique (LLIRCT), Journal of Colloid and Interface Science, vol. 315, no. 2, pp. 747-752, 2007.
S. Pradhan, A. Reddy, S., Devi, R. N., and Chilukuri, S. V., Copper-based catalysts for water gas shift reaction: influence of support on their catalytic activity, Catalysis Today, vol. 141, no. 1-2, pp. 72-76, 2009.
D. K. Pandey, Shabade, A. B., and Punji, B., Copper-catalyzed direct arylation of indoles and related (hetero)arenes: a ligandless and solvent-free approach, Advanced Synthesis & Catalysis, vol. 362, no. 12, pp. 2534-2540, 2020.
U. A. Kshirsagar and Argade, N. P., Copper-catalyzed intramolecular N-arylation of quinazolinones: facile convergent approach to (-)-circumdatins H and J, Organic Letters, vol. 12, no. 16, pp. 3716-3719, 2010.
S. K. Verma and Punji, B., Copper-catalyzed regioselective C-H alkylation of phenol derivatives with unactivated alkyl chlorides: manifesting a Cu(I)/Cu(III) pathway, Journal of Catalysis , vol. 430, 2024.
K. Hirano, Biju, A. T., and Glorius, F., Copper-catalyzed synthesis of 2-unsubstituted, n-substituted benzimidazoles, Journal of Organic Chemistry, vol. 74, no. 24, pp. 9570–9572, 2009.
P. K. Prasad and Sudalai, A., Copper(I) bromide-catalyzed carbonylative coupling of aryl halides with phenols, alcohols and amines using sodium cyanide as C-1 source: a synthesis of carboxylic acid derivatives, Advanced Synthesis & Catalysis, vol. 356, no. 10, pp. 2231-2238, 2014.
S. Kar, Sen, S., Maji, S., Saraf, D., Ruturaj,, Paul, R., Dutt, S., Mondal, B., Rodriguez-Boulan, E., Schreiner, R., Sengupta, D., and Gupta, A., Copper(II) import and reduction are dependent on His-Met clusters in the extracellular amino terminus of human copper transporter-1, Journal of Biological Chemistry, vol. 298, no. 3, p. 101631, 2022.
G. V. Shanbhag, Joseph, T., and Halligudi, S. B., Copper(II) ion exchanged A1SBA-15: a versatile catalyst for intermolecular hydroamination of terminal alkynes with aromatic amines, Journal of Catalysis, vol. 250, no. 2, pp. 274-282, 2007.
T. Joseph, Shanbhag, G. V., and Halligudi, S. B., Copper(II) ion-exchanged montmorillonite as catalyst for the direct addition of N-H bond to CC triple bond, Journal of Molecular Catalysis A - Chemical, vol. 236, no. 1-2, pp. 139-144, 2005.
S. B. Tayade, Illathvalappil, R., Lapalikar, V., Markad, D., Kurungot, S., Pujari, B., and Kumbhar, A. S., A copper(ii)-coordination polymer based on a sulfonic-carboxylic ligand exhibits high water-facilitated proton conductivity, Dalton Transactions, vol. 48, no. 29, pp. 11034-11044, 2019.
N. L. Jadhao, Musale, H. B., Gajbhiye, J. M., and Humne, V. T., Copper-mediated [3+2] oxidative cyclization of oxime acetate and its utility in the formal synthesis of fentiazac, Organic and biomolecular chemistry, vol. 22, no. 3, pp. 521-528, 2024.
U. N. Gupta, Samuel, V., Muthurajan, H., Kumar, H. H., Patil, S. D., and Ravi, V., Co-precipitation method for preparation of Bi3TiNbO9 powders, Ceramics International, vol. 34, no. 3, pp. 675-677, 2008.
S. P. Gaikwad, Dhage, S. R., and Ravi, V., Co-precipitation method for the preparation of ferroelectric CaBi4Ti4O15, Journal of Materials Science-Materials in Electronics, vol. 16, no. 4, pp. 229-231, 2005.
S. P. Gaikwad, Potdar, H. S., Samuel, V., and Ravi, V., Co-precipitation method for the preparation of fine ferroelectric BaBi2M2O9, Ceramics International, vol. 31, no. 3, pp. 379-381, 2005.
S. P. Gaikwad, Dhage, S. R., Potdar, H. S., Samuel, V., and Ravi, V., Co-precipitation method for the preparation of nanocrystalline ferroelectric SrBi2Nb2O9 ceramics, Journal of Electroceramics, vol. 14, no. 1, pp. 83-87, 2005.
S. R. Dhage, Pasricha, R., A. Murugan, V., and Ravi, V., Co-precipitation technique for the preparation of ferroelectric BaBi2Ta2O9, Materials Chemistry and Physics, vol. 98, no. 2-3, pp. 344-346, 2006.
N. Natarajan, Samuel, V., Pasricha, R., and Ravi, V., Coprecipitation technique to prepare BaNb2O6, Materials Science and Engineering B-Solid State Materials for Advanced Technology, vol. 117, no. 2, pp. 169-171, 2005.
S. C. Navale, Samuel, V., Gaikwad, A. B., and Ravi, V., Co-precipitation technique to prepare BaTa2O6, Ceramics International, vol. 33, no. 2, pp. 297-299, 2007.
R. Radha, Gupta, U. N., Samuel, V., Muthurajan, H., Kumar, H. H., and Ravi, V., Co-precipitation technique to prepare BiNbO4 powders, Ceramics International, vol. 34, no. 6, pp. 1565-1567, 2008.
H. Muthurajan, Gupta, U. N., Rituraj, B., N. Rao, K., Pradhan, S., Radha, R., and Ravi, V., Co-precipitation technique to prepare BiTaO4 powders, Materials Letters, vol. 62, no. 3, pp. 501-503, 2008.
I. S. Mulla, Natarajan, N., Gaikwad, A. B., Samuel, V., Guptha, U. N., and Ravi, V., Coprecipitation technique to prepare CoTa2O6 and CoNb2O6, Materials Letter, vol. 61, no. 11-12, pp. 2127-2129, 2007.
S. C. Navale, Gaikwad, A. B., and Ravi, V., Coprecipitation technique to prepare LiTaO3 powders, Materials Letters, vol. 60, no. 8, pp. 1047-1048, 2006.
V. Samuel, Gaikwad, A. B., and Ravi, V., Coprecipitation technique to prepare NaNbO3 and NaTaO3, Bulletin of Materials Science, vol. 29, no. 2, pp. 123-125, 2006.
V. Samuel, Gaikwad, A. B., Jadhav, A. D., Natarajan, N., and Ravi, V., Coprecipitation technique to prepare NiNb2O6, Materials Letter, vol. 61, no. 11-12, pp. 2354-2355, 2007.
V. A. Murugan, Gaikwad, A. B., Samuel, V., and Ravi, V., Coprecipitation technique to prepare Sr0.5Ba0.5Nb2O6, Bulletin of Materials Science, vol. 29, no. 3, pp. 221-223, 2006.
V. Ravi, Coprecipitation technique to prepare SrNb2O6, Materials Characterization, vol. 55, no. 1, pp. 92-95, 2005.
V. V. Deshpande, Patil, M. M., Navale, S. C., and Ravi, V., Coprecipitation technique to prepare ZnM2O6 powders, Bulletin of Materials Science, vol. 28, no. 3, pp. 205-207, 2005.
C. S. Bhatt, Nagaraj, B., Ghosh, D., Ramasamy, S., Thapa, R., Marpu, S. B., and Suresh, A. K., Core-composite mediated separation of diverse nanoparticles to purity, Soft Matter, vol. 15, no. 39, pp. 7787-7794, 2019.
M. B. Gawande, Goswami, A., Asefa, T., Guo, H., Biradar, A. V., Peng, D. - L., Zboril, R., and Varma, R. S., Core-shell nanoparticles: synthesis and applications in catalysis and electrocatalysis, Chemical Society Reviews, vol. 44, no. 21, pp. 7540-7590, 2015.
N. Bachhar, Kurnaraswamy, G., and Kumar, S. K., Core-size dispersity dominates the self-assembly of polymer grafted nanoparticles in solution, Macromolecules, vol. 52, no. 13, pp. 4888-4894, 2019.
K. M. Solntsev, Ghosh, D., Amador, A., Josowicz, M., and Krylov, A. I., Correction to what drives the redox properties of model green fluorescence protein chromophores?, Journal of Physical Chemistry Letters, vol. 2, no. 21, pp. 2695–2695, 2011.
Y. Sajeev, Santra, R., and Pal, S., Correlated complex independent particle potential for calculating electronic resonances, Journal of Chemical Physics, vol. 123, no. 20, p. 204110, 2005.
P. Deb, Haldar, T., Kashid, S. M., Banerjee, S., Chakrabarty, S., and Bagchi, S., Correlating Nitrile IR frequencies to local electrostatics quantifies noncovalent interactions of peptides and proteins, Journal of Physical Chemistry B, vol. 120, no. 17, pp. 4034-4046, 2016.
A. Lazar, George, S. C., Jithesh, P. R., Vinod, C. P., and Singh, A. P., Correlating the role of hydrophilic/hydrophobic nature of Rh(I) and Ru(II) supported organosilica/silica catalysts in organotransformation reactions, Applied Catalysis A-General, vol. 513, pp. 138-146, 2016.
A. Mallick, Kundu, T., and Banerjee, R., Correlation between coordinated water content and proton conductivity in Ca-BTC-based metal-organic frameworks, Chemical Communications, vol. 48, no. 70, pp. 8829-8831, 2012.
Y. Harima, Ogawa, F., Patil, R., and Jiang, X., Correlation between mobility enhancement and conformational change in polyaniline and its derivatives: polaron lattice formation, Electrochimica Acta, vol. 52, no. 11, pp. 3615-3620, 2007.
P. Redhu, Punia, R., Hooda, A., Malik, B. P., Sharma, G., and Sharma, P., Correlation between multifunctional properties of lead free Iron doped BCT perovskite ceramics, Ceramics International, vol. 46, no. 11, pp. 17495-17507, 2020.
A. Susan, Kibey, A., Kaware, V., and Joshi, K., Correlation between the variation in observed melting temperatures and structural motifs of the global minima of gallium clusters: an ab initio study, Journal of Chemical Physics, vol. 138, no. 1, p. 014303, 2013.
K. Kaushlendra, Deepak, V. D., and Asha, S. K., Correlation of architecture with excimer emission in 100% pyrene-labeled self-assembled polymers, Journal of Polymer Science Part A-Polymer Chemistry, vol. 49, no. 7, pp. 1678-1690, 2011.
G. S. Jedhe, Paul, D., Gonnade, R. G., Santra, M. K., Hamel, E., Nguyen, T. Luong, and Sanjayan, G. J., Correlation of hydrogen-bonding propensity and anticancer profile of tetrazole-tethered combretastatin analogues, Bioorganic & Medicinal Chemistry Letters, vol. 23, no. 16, pp. 4680-4684, 2013.
S. Krishnaswamy and Shashidhar, M. S., Correlation of intermolecular acyl transfer reactivity with noncovalent lattice interactions in molecular crystals: toward prediction of reactivity of organic molecules in the solid state, Journal of Organic Chemistry, vol. 83, no. 7, pp. 3952-3959, 2018.
M. I. Tamboli, Bahadur, V., Gonnade, R. G., and Shashidhar, M. S., Correlation of the solid-state reactivities of racemic 2,4(6)-di-O-benzoyl-myo-inositol 1,3,5-orthoformate and its 4,4 `-bipyridine cocrystal with their crystal structures, Acta Crystallographica Section C-Structural Chemistry, vol. 70, no. Part : 11, p. 1040+, 2014.
K. Talukdar, Sasmal, S., Nayak, M. K., Vaval, N., and Pal, S., Correlation trends in the magnetic hyperfine structure of atoms: a relativistic coupled-cluster case study, Physical Review A, vol. 98, no. 2, 2018.
K. Anjali, Ajithkumar, T. G., and Joy, P. Alias, Correlations between structure, microstructure, density and dielectric properties of the lead-free ferroelectrics Bi0.5(Na,K)0.5TiO3, Journal of Advanced Dieletrics, vol. 5, no. 4, pp. 1550028 Page 1-6, 2015.
C. Saritha, Satpute, D. B., Badarayani, R., and Kumar, A., Correlations of thermodynamic properties of aqueous amino acid-electrolyte mixtures, Journal of Solution Chemistry, vol. 38, no. 1, pp. 95-114, 2009.
A. N. Rane, Baikar, V. V., V. Kumar, R., and Deopurkar, R. L., Corrigendum: Agro-Industrial wastes for production of biosurfactant by bacillus subtilis ANR 88 and its application in synthesis of silver and gold nanoparticles [Front. Microbiol. 8, (492)] DOI: 10.3389/fmicb.2017.00492, Frontiers in Microbiology, vol. 8, no. MAY, 2017.
P. Pawar, Gaikwad, A. B., and Patil, P. P., Corrosion protection aspects of electrochemically synthesized poly(o-anisidine-co-o-toluidine) coatings on copper, Electrochimica Acta, vol. 52, no. 19, pp. 5958-5967, 2007.
V. Shinde, Sainkar, S. R., and Patil, P. P., Corrosion protective poly(o-toluldine) coatings on copper, Corrosion Science, vol. 47, no. 6, pp. 1352-1369, 2005.
S. K. M. Unni, Mora-Hernandez, J. M., Kurungot, S., and Alonso-Vante, N., CoSe2 supported on nitrogen-doped carbon nanohorns as a methanol-tolerant cathode for air-breathing microlaminar flow fuel cells, Chemelectrochem, vol. 2, no. 9, pp. 1339-1345, 2015.
S. M. Kashid, Jin, G. Young, Bagchi, S., and Kim, Y. Sam, Cosolvent effects on solute-solvent hydrogen-bond dynamics: ultrafast 2D IR investigations, Journal of Physical Chemistry B, vol. 119, no. 49, pp. 15334-15343, 2015.
N. D. Khupse and Kumar, A., Cosolvent-directed diels-alder reaction in ionic liquids, Journal of Physical Chemistry A, vol. 115, no. 36, pp. 10211-10217, 2011.
E. Samuel, Joshi, B., Kim, Y., Park, C., Aldalbahi, A., El-Newehy, M., Lee, H. - S., and Yoon, S. S., Cotton fabric decorated with manganese oxide nanorods as a supercapacitive flexible electrode for wearable electronics, Applied Surface Science, vol. 568, p. 150968, 2021.
S. Kheria, Rayavarapu, S., Kotmale, A. S., Shinde, D. R., Gonnade, R. G., and Sanjayan, G. J., Coumarin-appended stable fluorescent self-complementary quadruple-hydrogen-bonded molecular duplexes, Journal of Organic Chemistry, vol. 82, no. 12, pp. 6403-6408, 2017.
A. Maity, Gangopadhyay, M., Basu, A., Aute, S., Babu, S. Santhosh, and Das, A., Counteranion driven homochiral assembly of a cationic C-3-symmetric gelator through ion-pair assisted hydrogen bond, Journal of the American Chemical Society, vol. 138, no. 35, pp. 11113-11116, 2016.
D. B. Shinde, Majumder, M., and Pillai, V. K., Counter-ion dependent, longitudinal unzipping of multi-walled carbon nanotubes to highly conductive and transparent graphene nanoribbons, Scientific Reports, vol. 4, p. Article No. : 4363, 2014.
Y. Sajeev, Ghosh, A., Vaval, N., and Pal, S., Coupled cluster methods for autoionisation resonances, International Reviews in Physical Chemistry, vol. 33, no. 3, pp. 397-425, 2014.
R. Sinha Roy, Soni, S., Harfouche, R., Vasudevan, P. R., Holmes, O., de Jonge, H., Rowe, A., Paraskar, A., Hentschel, D. M., Chirgadze, D., Blundell, T. L., Gherardi, E., Mashelkar, R. Anant, and Sengupta, S., Coupling growth-factor engineering with nanotechnology for therapeutic angiogenesis, Proceedings of the National Academy of Sciences of the United States of America, vol. 107, no. 31, pp. 13608-13613, 2010.
A. Kumar Mahato, Pal, S., Dey, K., Reja, A., Paul, S., Shelke, A., Ajithkumar, T. G., Das, D., and Banerjee, R., Covalent organic framework cladding on peptide-amphiphile-based biomimetic catalysts, Journal of the American Chemical Society, vol. 145, no. 23, pp. 12793-12801, 2023.
S. Bag, Sasmal, H. Sekhar, Chaudhary, S. Pratap, Dey, K., Blaette, D., Guntermann, R., Zhang, Y., Poloz, M., Kuc, A., Shelke, A., Vijayaraghavan, R. K., Ajithkumar, T. G., Bhattacharyya, S., Heine, T., Bein, T., and Banerjee, R., Covalent organic framework thin-film photodetectors from solution-processable porous nanospheres, Journal of the American Chemical Society, vol. 145, no. 3, pp. 1649-1659, 2023.
K. Dey and Banerjee, R., Covalent organic framework thin-films for molecular separation, Acta Crystallographica A‐Foundation and Advances, vol. 70, p. C547, 2014.
C. Chandran, Singh, H. Dev, Leo, L. S., Shekhar, P., Rase, D., Chakraborty, D., Vinod, C. P., and Vaidhyanathan, R., Covalent organic framework with electrodeposited copper nanoparticles - a desirable catalyst for the Ullmann coupling reaction, Journal of Materials Chemistry A, vol. 10, no. 29, pp. 15647-15656, 2022.
J. Thote, Aiyappa, H. Barike, Deshpande, A., Diaz, D. Diaz, Kurungot, S., and Banerjee, R., Covalent organic framework-cadmium sulfide hybrid as a prototype photocatalyst for visible-light-driven hydrogen production, Chemistry A-European Journal, vol. 20, no. 48, pp. 15961-15965, 2014.
R. Banerjee and Champness, N. R., Covalent organic frameworks and organic cage structures, CrystEngComm, vol. 19, no. 33, 2017.
S. Kandambeth, Dey, K., and Banerjee, R., Covalent organic frameworks: chemistry beyond the structure, Journal of the American Chemical Society, vol. 141 , no. 5, pp. 1807–1822, 2018.
S. Kandambeth, Dey, K., and Banerjee, R., Covalent organic frameworks: chemistry beyond the structure , Journal of the American Chemical Society, vol. 141, no. 5, pp. 1807-1822, 2019.
H. Sekhar Sasmal, Halder, A., Kunjattu, S., Dey, K., Nadol, A., Ajithkumar, T. G., Bedadur, P. Ravindra, and Banerjee, R., Covalent self-assembly in two dimensions: connecting covalent organic framework nanospheres into crystalline and porous thin films, Journal of the American Chemical Society, vol. 141, no. 51, p. 20379, 2019.
P. Sharma and Singh, A. P., Covalently anchored 2,4,6-triallyloxy-1,3,5-triazine Pd(II) complex over a modified surface of SBA-15: catalytic application in hydrogenation reaction, RSC Advances, vol. 4, no. 102, pp. 58467-58475, 2014.
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.
R. Sekhar Roy, Mondal, S., Mishra, S., Banoo, M., Sahoo, L., Kumar, A., Vinod, C. P., De, A. K., and Gautam, U. K., Covalently interconnected layers in g-C3N4: toward high mechanical stability, catalytic efficiency and sustainability, Applied Catalysis B: Environmental, vol. 322, p. 122069, 2023.
R. Samson and Dharne, M., COVID-19 associated mucormycosis: evolving technologies for early and rapid diagnosis, 3 Biotech, vol. 12, no. 1, p. 6, 2022.
A. Sharma, V. Dambhare, N., Bera, J., Sahu, S., and Rath, A. K., Crack-free conjugated PbS quantum dot-hole transport layers for solar cells, ACS Applied Nano Materials, vol. 4, no. 4, pp. 4016-4025, 2021.
S. Dev and Nagasampagi, B. A., CRC handbook of terpenoids: triterpenoids volume I: acyclic, monocyclic, bicyclic, tricyclic, and tetracyclic terpenoids, vol. 1. CRC Press, Inc., 2018, pp. 1-573.
S. Dev and Gupta, A. S., CRC handbook of terpenoids: triterpenoids: Volume ii: pentacyclic and hexacyclic triterpenoids, vol. 2. CRC Press, 2018, pp. 1-624.
V. V. Ranade, Sharma, M. K., and Kulkarni, A. A., CRE for magic(modular, agile, intensified & continuous) processes, Chemical Engineering Journal, vol. 278, pp. 454-468, 2015.
K. Rai Gajbhiye, Gajbhiye, V., Siddiqui, I. A., and Gajbhiye, J. M., cRGD functionalized nanocarriers for targeted delivery of bioactives, Journal of Drug Targeting, vol. 27, no. 2, pp. 111-124, 2019.
R. R. Tiwari and Natarajan, U., Critical organic modifier aliphatic tail length for the formation of poly(methyl methacrylate)-montmorillonite nanocomposites, Polymer Engineering and Science, vol. 60, no. 7, pp. 1604-1617, 2020.
W. Naessens, Maere, T., Ratkovich, N., Vedantam, S., and Nopens, I., Critical review of membrane bioreactor models - Part 2: Hydrodynamic and integrated models, Bioresource Technology, vol. 122, pp. 107-118, 2012.

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