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D. Banerjee and Raghunathan, A., Constraints-based analysis identifies NAD(+) recycling through metabolic reprogramming in antibiotic resistant Chromobacterium violaceum, PLoS One, vol. 14, no. 1, p. Article Number: e0210008, 2019.
J. Thote, Aiyappa, H. Barike, Kumar, R. Rahul, Kandambeth, S., Biswal, B. P., Shinde, D. Balaji, Roy, N. Chaki, and Banerjee, R., Constructing covalent organic frameworks in water via dynamic covalent bonding, Iucrj, vol. 3, no. 6, pp. 402-407, 2016.
S. Karak, Kandambeth, S., Biswal, B. P., Sasmal, H. S., Kumar, S., Pachfule, P., and Banerjee, R., Constructing ultraporous covalent organic fameworks in seconds via an organic terracotta process, Journal of the American Chemical Society , vol. 139, no. 5, pp. 1856-1862, 2017.
U. P. Singh, Singh, N., and Chandra, S., Construction and structural diversity of Cd-MOFs with pyrazole based flexible ligands and positional isomer of naphthalenedisulfonate, Inorganic Chemistry Communications, vol. 61, pp. 35-40, 2015.
A. Wale, Mulani, K., Deshpande, S., Rajan, C. R., and Ponrathnam, S., Construction of beta-cyclodextrin linked glycidyl methacrylate polymers for stereoselective separation of chiral drug, Journal of Polymer Research, vol. 28, no. 8, p. 287, 2021.
A. Singh, Chaudhary, M. V., and Sastry, M., Construction of conductive multilayer films of biogenic triangular gold nanoparticles and their application in chemical vapour sensing, Nanotechnology, vol. 17, no. 9, pp. 2399-2405, 2006.
G. Pandey, Banerjee, P., and Gadre, S. R., Construction of enantiopure pyrrolidine ring system via asymmetric [3+2]-cycloaddition of azomethine ylides, Chemical Reviews, vol. 106, no. 11, pp. 4484-4517, 2006.
S. Karak and Banerjee, R., Construction of highly crystalline ultraporous covalent organic frameworks in seconds, Acta Crystallographica A‐Foundation and Advances, vol. 70, p. C456, 2014.
S. A. Beknalkar, Teli, A. M., Harale, N. S., Shin, J. C., and Patil, P. S., Construction of IrO2@Mn3O4 core-shell heterostructured nanocomposites for high performance symmetric supercapacitor device, Journal of Alloys and Compounds, vol. 887, p. 161328, 2021.
S. Bala, Bishwas, M. Sen, Pramanik, B., Khanra, S., Fromrn, K. M., Poddar, P., and Mondal, R., Construction of polynuclear lanthanide (Ln = Dy-III, Tb-III, and Nd-III) cage complexes using pyridine-pyrazole-based ligands: versatile molecular topologies and smm behavior, Inorganic Chemistry, vol. 54, no. 17, pp. 8197-8206, 2015.
V. G. Pandya and Mhaske, S. B., Construction of tetrahydrobenzo[f]quinoline scaffolds via polar [4+2]-Cycloaddition reaction with arynes as dienophiles, Tetrahedron Letters, vol. 101, p. 153901, 2022.
G. Pandey, Gupta, N. R., and Gadre, S. R., Construction of the 5,10b-phenanthridine skeleton using [3+2]-cycloaddition of a non-stabilized azomethine ylide: total synthesis of (+/-)-maritidine and (+/-)-crinine alkaloids, European Journal of Organic Chemistry, no. 4, pp. 740-750, 2011.
S. V. V. Halnor, Dhote, P. S. S., and Ramana, C. V. V., Construction of the quinobenzoxazine core via gold-catalyzed dual annulation of azide-tethered alkynones with anthranils, Organic & Biomolecular Chemistry, vol. 21, no. 10, pp. 2127-2137, 2023.
V. Bahadur, Gonnade, R. G., I. Tamboli, M., Krishnaswamy, S., and Shashidhar, M. S., Construction of two-component chemically reactive supramolecular assemblies-acyl migration reactions in cocrystals of napthalene-2,3-diol and its diesters, ChemPlusChem, vol. 86, no. 8, pp. 1128-1134, 2021.
P. Halder, Pol, M. D., Ahire, M. M., and Mhaske, S. B., Construction of unique SCF3-containing building blocks via allylic alkylation of Morita-Baylis-Hillman adducts, Organic & Biomolecular Chemistry, vol. 18, no. 11, pp. 2085-2093, 2020.
N. Sethulakshmi, Sooraj, V., Sajeev, U. S., Nair, S. S., Narayanan, T. N., Joy, L. K., Joy, P. Alias, Ajayan, P. M., and Anantharaman, M. R., Contact potential induced enhancement of magnetization in polyaniline coated nanomagnetic iron oxides by plasma polymerization, Applied Physics Letters, vol. 103, no. 16, p. 162414, 2013.
V. Koshti, Gaikwad, S. R., and Chikkali, S. H., Contemporary avenues in catalytic P-H bond addition reaction: a case study of hydrophosphination, Coordination Chemistry Reviews, vol. 265, pp. 52-73, 2014.
S. Damilos, Alissandratos, I., Panariello, L., Radhakrishnan, A. N. P., Cao, E., Wu, G., Besenhard, M. O., Kulkarni, A. A., Makatsoris, C., and Gavriilidis, A., Continuous citrate-capped gold nanoparticle synthesis in a two-phase flow reactor, Journal of Flow Chemistry, vol. 11, no. 3, pp. 553-567, 2021.
R. B. Mane and Rode, C. V., Continuous dehydration and hydrogenolysis of glycerol over non-chromium copper catalyst: laboratory-scale process studies, Organic Process Research & Development, vol. 16, no. 5, pp. 1043-1052, 2012.
M. B. Yadav, Kulkarni, S., Joshi, R. A., and Kulkarni, A. A., Continuous flow doebner–miller reaction and isolation using continuous stirred tank reactors, Organic Process Research & Development, vol. 20, no. 9, pp. 1621–1625, 2016.
A. A. Kulkarni, Nivangune, N. T., Joshi, R. R., and Joshi, R. A., Continuous flow multipoint dosing approach for selectivity engineering in sulfoxidation, Organic Process Research & Development, vol. 17, no. 10, pp. 1293-1299, 2013.
A. A. Kulkarni, Continuous flow nitration in miniaturized devices, Beilstein Journal of Organic Chemistry, vol. 10, pp. 405-424, 2014.
A. A. Kulkarni, Kalyani, V. S., Joshi, R. A., and Joshi, R. R., Continuous flow nitration of benzaldehyde, Organic Process Research & Development, vol. 13, no. 5, pp. 999-1002, 2009.
A. A. Kulkarni, Nivangune, N. T., Kalyani, V. S., Joshi, R. A., and Joshi, R. R., Continuous flow nitration of salicylic acid, Organic Process Research & Development, vol. 12, no. 5, pp. 995-1000, 2008.
B. M. Sharma, Atapalkar, R. S., and Kulkarni, A. A., Continuous flow solvent free organic synthesis involving solids (reactants/products) using a screw reactor, Green Chemistry, vol. 21, no. 20, pp. 5639-5646, 2019.
D. V. Ravi Kumar, Kasture, M., Prabhune, A., Ramana, C. V., Prasad, B. L. V., and Kulkarni, A. A., Continuous flow synthesis of functionalized silver nanoparticles using bifunctional biosurfactants, Green Chemistry, vol. 12, no. 4, pp. 609-615, 2010.
R. B. Jundale, Prasad, B. L. V., R. Devi, N., and Kulkarni, A. A., Continuous flow synthesis of mesoporous silica particles with tunable size and structure, Industrial and Engineering Chemistry Research, vol. 63, pp. 1843-1852, 2024.
R. Jundale, Bari, A., Thara, C., and Kulkarni, A., Continuous flow synthesis of micron size silica nanoparticles: parametric study and effect of dosing strategy, Journal of Flow Chemistry, vol. 8, no. 2, pp. 59-67, 2018.
A. A. Kulkarni and Jundale, R. B., Continuous Flow Synthesis of Nanomaterials, in Continuous Flow Synthesis of Nanomaterials, vol. 62, Royal Society of Chemistry, 2020, pp. 316-339.
Y. Sharma, Moolya, S., Joshi, R. A., and Kulkarni, A. A., Continuous flow telescopic oxidation of alcohols via generation of chlorine and hypochlorite, Reaction Chemistry & Engineering, 2017.
M. Y. Khan, Joshi, S. S., and Ranade, V. V., Continuous hydrogenation of cinnamaldehyde: gas-liquid-liquid-solid helical coil reactor, Industrial & Engineering Chemistry Research, vol. 62, no. 45, pp. 19250-19261, 2023.
A. C. Garade, Hengne, A. M., Deshpande, T. N., Shaligram, S. V., Shirai, M., and Rode, C. V., Continuous hydroxyalkylation of p-Cresol to 2,2 `-methylenebis(4-Methylphenol) in a fixed bed reactor, Journal of Chemical Engineering of Japan, vol. 42, no. 10, pp. 782-787, 2009.
J. B. Deshpande, Navale, G. R., Dharne, M. S., and Kulkarni, A. A., Continuous interfacial centrifugal separation and recovery of silver nanoparticles, Chemical Engineering & Technology, vol. 43, no. 3, pp. 582-592, 2020.
R. J. Varma and Gaikwad, B. G., Continuous phenol biodegradation in a simple packed bed bioreactor of calcium alginate-immobilized Candida tropicalis (NCIM 3556), World Journal of Microbiology & Biotechnology, vol. 26, no. 5, pp. 805-809, 2010.
S. R. Shirsath, Sonawane, S. H., Saini, D. R., and Pandit, A. B., Continuous precipitation of calcium carbonate using sonochemical reactor, Ultrasonics Sonochemistry, vol. 24, pp. 132-139, 2015.
M. Kumar Nandi and Bhattacharyya, S. Maitra, Continuous time random walk concepts applied to extended mode coupling theory: a study of the Stokes? Einstein breakdown, Journal of Physics-Condensed Matter, vol. 32, no. 6, p. 064001, 2020.
V. G. Bhaya, Joshi, R. A., and Kulkarni, A. A., Continuous-flow meerwein arylation, Journal of Flow Chemistry, vol. 4, no. 4, pp. 211-216, 2014.
Y. Sharma, Joshi, R. A., and Kulkarni, A. A., Continuous-flow nitration of o-xylene: effect of nitrating agent and feasibility of tubular reactors for scale-up, Organic Process Research & Development, vol. 19, no. 9, pp. 1138-1147, 2015.
F. Guo, Cheung, E. Y., Harris, K. D. M., and Pedireddi, V. R., Contrasting solid-state structures of trithiocyanuric acid and cyanuric acid, Crystal Growth & Design, vol. 6, no. 4, pp. 846-848, 2006.
N. D. Khupse and Kumar, A., Contrasting thermosolvatochromic trends in pyridinium-, pyrrolidinium-, and phosphonium-based ionic liquids, Journal of Physical Chemistry B, vol. 114, no. 1, pp. 376-381, 2010.
D. Manzoor, Krishnamurty, S., and Pal, S., Contriving a catalytically active structure from an inert conformation: a density functionalinvestigation of Al, Hf, and Ge doping of Au-20 tetrahedral clusters, Journal of Physical Chemistry C, vol. 120, no. 35, pp. 19636-19641, 2016.
J. M. Nadgeri, Biradar, N. S., Patil, P. B., Jadkar, S. T., Garade, A. C., and Rode, C. V., Control of competing hydrogenation of phenylhydroxylamine to aniline in a single-step hydrogenation of nitrobenzene to p-aminophenol , Industrial & Engineering Chemistry Research, vol. 50, no. 9, pp. 5478-5484, 2011.
R. Resmi, Amrutha, S. R., and Jayakannan, M., Control of molecular aggregation in symmetrically substituted pi-conjugated bulky poly(p-phenylenevinylene)s and their copolymers, Journal of Polymer Science Part A-Polymer Chemistry, vol. 47, no. 10, pp. 2631-2646, 2009.
B. Jancy and Asha, S. K., Control of molecular structure in the generation of highly luminescent liquid crystalline perylenebisimide derivatives: synthesis, liquid crystalline and photophysical properties, Journal of Physical Chemistry B, vol. 110, no. 42, pp. 20937–20947, 2006.
F. J. Schurk, Deshpande, P. B., Leffew, K. W., and Nadkarni, V. M., Control of polymerization reactors, 1stst ed. New York : CRC Press, 2017, pp. 1-355.
P. Pachfule, Biswal, B. P., and Banerjee, R., Control of porosity by using isoreticular zeolitic imidazolate frameworks (IRZIFs) as a template for porous carbon synthesis, Chemistry-A European Journal, vol. 18, no. 36, pp. 11399-11408, 2012.
N. Hiyoshi, Mine, E., Rode, C. V., Sato, O., Ebina, T., and Shirai, M., Control of stereoselectivity in 4-tert-butylphenol hydrogenation over a carbon-supported rhodium catalyst by carbon dioxide solvent, Chemistry Letters, vol. 35, no. 9, pp. 1060-1061, 2006.
K. Prakash, P. Kumar, S., Pandiaraj, S., Saravanakumar, K., and Karuthapandian, S., Controllable synthesis of SnO2 photocatalyst with superior photocatalytic activity for the degradation of methylene blue dye solution, Journal of Experimental Nanoscience, vol. 11, no. 14, pp. 1138-1155, 2016.
S. Tamang, Hotha, S., and Prasad, B. L. V., Controlled aggregation of gold nanoparticle networks induced by alkali metal ions, Journal of Nanoscience and Nanotechnology, vol. 7, no. 8, pp. 2683-2689, 2007.
G. Sakellariou, Ji, H., Mays, J. W., Hadjichristidis, N., and Baskaran, D., Controlled covalent functionalization of multiwalled carbon nanotubes using [4+2] cycloaddition of benzocyclobutenes, Chemistry of Materials, vol. 19, no. 26, pp. 6370-6372, 2007.
N. R. Mote, Gaikwad, S. R., ,, Gonnade, R. G., and Chikkali, S. H., Controlled di-lithiation enabled synthesis of phosphine-sulfonamide ligands and implications in ethylene oligomerization, Dalton Transactions, vol. 50, no. 10, pp. 3717-3723, 2021.
G. Tiwari, C. Vinod, P., and Jagirdar, B. R., Controlled exchange bias behavior of manganese nanoparticles, Journal of Magnetism and Magnetic Materials, vol. 559, p. 169504, 2022.
P. S. Chaudhari, Bhave, T. M., Pasricha, R., Singh, F., Kanjilal, D., and Bhoraskar, S. V., Controlled growth of silicon nanocrystallites in silicon oxide matrix using 150 MeV Ag ion irradiation, Nuclear Instruments & Methods in Physics Research Section B-Beam Interactions with Materials and Atoms, vol. 239, no. 3, pp. 185-190, 2005.
N. Kalva, Parekh, N., and Ambade, A. V., Controlled micellar disassembly of photo- and pH-cleavable linear-dendritic block copolymers, Polymer Chemistry, vol. 6, no. 38, pp. 6826-6835, 2015.
D. Kumar Das, Bakthavatsalam, R., Anilkumar, V., Mali, B. P., Ahmed, M. Soif, Raavi, S. Santosh Ku, Pallepogu, R., and Kundu, J., Controlled modulation of the structure and luminescence properties of zero-dimensional manganese halide hybrids through structure-directing metal-ion (Cd2+ and Zn2+) centers, Inorganic Chemistry, vol. 61, no. 13, pp. 5363-5372, 2022.
R. Kumar, Sharma, V., Banerjee, S., Vanka, K., and Sen, S. S., Controlled reduction of isocyanates to formamides using monomeric magnesium, Chemical Communications, vol. 59, no. 16, pp. 2255-2258, 2023.
K. Shanmuganathan, Shukla, P., Jagtap, S., Patil, V., and Sapre, A., Controlled release nanocomposite microcapsules for agricultural applications, in 256th National Meeting and Exposition of the American-Chemical-Society (ACS) - Nanoscience, Nanotechnology and Beyond, Boston, MA, 2018.
B. V. Bhaskar Rao, Mukherji, R., Shitre, G., Alam, F., Prabhune, A., and Kale, S. N., Controlled release of antimicrobial Cephalexin drug from silica microparticles, Materials Science & Engineering C-Materials for Biological Applications, vol. 34, pp. 9-14, 2014.
S. Hegde, Pant, T., Pradhan, K., Badiger, M. V., and Gadgil, M., Controlled release of nutrients to mammalian cells cultured in shake flasks, Biotechnology Progress, vol. 28, no. 1, pp. 188-195, 2012.
S. M. Ansari, Sinha, B. B., Pai, K. R., Bhat, S. K., Ma, Y. - R., Sen, D., Kolekar, Y. D., and , Controlled surface/interface structure and spin enabled superior properties and biocompatibility of cobalt ferrite nanoparticles, Allied Surface Science , vol. 459, pp. 788-801, 2018.
C. Dey and Banerjee, R., Controlled synthesis of a catalytically active hybrid metal-oxide incorporated zeolitic imidazolate framework (MOZIF), Chemical Communications, vol. 49, no. 59, pp. 6617-6619, 2013.
S. S. Warule, Chaudhari, N. S., Kale, B. B., Pandiraj, S., Khare, R. T., and More, M. A., Controlled synthesis of aligned Bi2S3 nanowires, sharp apex nanowires and nanobelts with its morphology dependent field emission investigations, Crystengcomm, vol. 15, no. 5, pp. 890-896, 2013.
S. Das, Parekh, N., Mondal, B., and Gupta, S. Sen, Controlled synthesis of end-functionalized mannose-6-phosphate glycopolypeptides for lysosome targeting, ACS Macro Letters, vol. 5, no. 7, pp. 809-813, 2016.
P. S. Umare, Rao, K., Tembe, G. L., Dhoble, D. Arun, and Trivedi, B., Controlled synthesis of low-molecular-weight polyethylene waxes by titanium-biphenolate-ethylaluminum sesquichloride based catalyst systems, Journal of Applied Polymer Science, vol. 104, no. 3, pp. 1531-1539, 2007.
D. Pati, Shaikh, A. Y., Das, S., Nareddy, P. Kumar, Swamy, M. J., Hotha, S., and Gupta, S. Sen, Controlled synthesis of O-glycopolypeptide polymers and their molecular recognition by lectins, Biomacromolecules, vol. 13, no. 5, pp. 1287-1295, 2012.
C. Amgoth, Patra, S., Wasnik, K., Maity, P., and Paik, P., Controlled synthesis of thermosensitive tunable porous film of (pNIPAM)-b-(PCL) copolymer for sustain drug delivery, Journal of Applied Polymer Science, vol. 140, no. 20, p. e53854, 2023.
K. Bin Masood, Kumar, P., Giri, R., and Singh, J., Controlled synthesis of two-dimensional (2-D) ultra-thin bismuth selenide (Bi2Se3) nanosheets by bottom-up solution-phase chemistry and its electrical transport properties for thermoelectric application, FlatChem, vol. 21, p. 100165, 2020.
S. C. Navale, Gosavi, S. W., and Mulla, I. S., Controlled synthesis of ZnO from nanospheres to micro-rods and its gas sensing studies, Talanta, vol. 75, no. 5, pp. 1315-1319, 2008.
P. Gogoi, Kanna, N., Begum, P., Deka, R. C., Satyanarayana, C. V. V., and Raja, T., Controlling and stabilization of Ru nanoparticles by tuning the nitrogen content of the support for enhanced H-2 production through aqueous-phase reforming of glycerol, ACS Catalysis, vol. 10, no. 4, pp. 2489-2507, 2020.
D. Rokade, Chougale, S., Patil, P., Bhattacharjee, T., Gawande, D., Pol, H., and Dhadwal, R., Controlling draw resonance during extrusion film casting of nanoclay filled linear low-density polyethylene: an experimental study and numerical linear stability analysis, Journal of Plastic Film & Sheeting, vol. 37, no. 3, p. 8756087920978443, 2021.
D. Rokade, Azad, L. B., Poddar, S., Mishra, S., Pol, H. V., and Shukla, R., Controlling necking in extrusion film casting using polymer nanocomposites, Journal of Macromolecular Science Part B-Physics, vol. 56, no. 4, pp. 213-233, 2017.
A. Azarifar, Yadav, P. A., Chawla, A. K., Jog, J. Prakash, Patil, S. I., Chandra, R., and Ogale, S. B., Controlling stoichiometry in low temperature synthesis of La0.7Sr0.3MnO3 nanoparticles, Advanced Science Letters, vol. 4, no. 2, pp. 424-430, 2011.
V. Dhyani and Singh, N., Controlling the cell adhesion property of silk films by graft polymerization, ACS Applied Materials & Interfaces, vol. 6, no. 7, pp. 5005-5011, 2014.
S. S. Shankar, Rai, A., Ahmad, A., and Sastry, M., Controlling the optical properties of lemongrass extract synthesized gold nanotriangles and potential application in infrared-absorbing optical coatings, Chemistry of Materials, vol. 17, no. 3, pp. 566-572, 2005.
S. N. Rai, Kalluraya, B., Lingappa, B., Shenoy, S., and Puranik, V. G., Convenient access to 1, 3,4-trisubstituted pyrazoles carrying 5-nitrothiophene moiety via 1,3-dipolar cycloaddition of sydnones with acetylenic ketones and their antimicrobial evaluation, European Journal of Medicinal Chemistry, vol. 43, no. 8, pp. 1715-1720, 2008.
S. P. Borikar and Daniel, T., Convenient and efficient protocol for the synthesis of acylals catalyzed by bronsted acidic ionic liquids under ultrasonic irradiation, Ultrasonics Sonochemistry, vol. 18, no. 5, pp. 928-931, 2011.
S. Mitragotri, Kulkarni, M., Desai, U., and Wadagaonkar, P., Convenient and mild protocol for preparation of α –trimethylsilyloxyphosphonates using sulfamic acid and their oxidation to α – ketophosphonates in the presence of N-bromosuccinimide, Arkivoc, vol. 2021, 2021.
K. Pradhan, Selvaraj, K., and Nanda, A. K., Convenient approach to the synthesis of different types of schiff's bases and their metal complexes, Chemistry Letters, vol. 39, no. 10, pp. 1078-1079, 2010.
U. R. Kalkote, Purude, A. N., Puranik, V. G., and Gurjar, M. K., Convenient chemoenzymatic synthesis of (1S,7aS)-1-hydroxy-5-oxo-4-(2 `-carboxyethyl)-7a-methyltetrahydro-indane - a key intermediate of steroids, Journal of Molecular Catalysis B-Enzymatic, vol. 40, no. 1-2, pp. 38-43, 2006.
E. Balaraman and Swamy, K. C. Kumara, Convenient chromatography-free access to enantio-pure 6,6’-di-tert-butyl-1,1’- binaphthalene-2,2’-diol- its 3,3’-dibromo, di-tert-butyl and phosphorus derivatives: utility in asymmetric synthesis, Tetrahedron-Asymmetry, vol. 18, no. 17, pp. 2037–2048, 2007.
S. P. Chavan, Harale, K. R., Dumare, N. B., and Kalkote, U. R., Convenient formal synthesis of (2S,3S)-3-hydroxy pipecolic acid, Tetrahedron-Asymmetry, vol. 22, no. 5, pp. 587-590, 2011.
S. P. Chavan, Khobragade, D. A., Pathak, A. B., and Kalkote, U. R., Convenient formal synthesis of (+/-)-paroxetine, Synthetic Communications, vol. 37, no. 18, pp. 3143-3149, 2007.
G. Suresh, Nadh, R. Venkata, Srinivasu, N., and Yennity, D., Convenient new and efficient commercial synthetic route for dasatinib (sprycel®), Synthetic Communications, vol. 47, no. 17, pp. 1610-1621, 2017.
Y. Soni, Kumar, A. Erumpukuth, Nayak, C., Deepak, F. Leonard, and Vinod, C. P., Convenient route for Au@Ti-SiO2 nanocatalyst synthesis and its application for room temperature CO oxidation, Journal of Physical Chemistry C, vol. 121, no. 9, pp. 4946-4957, 2017.
M. K. Sahoo, Sivakumar, G., Jadhav, S., Shaikh, S., and Balaraman, E., Convenient semihydrogenation of azoarenes to hydrazoarenes using H-2, Organic & Biomolecular Chemistry, vol. 19, no. 24, 2021.
L. Muthusubramanian and Mitra, R. B., Convenient synthesis of 1-acetyl-2,2-dimethyl-3-arylcyclopropanes, Organic Preparations and Procedures International, vol. 40, no. 3, pp. 311-315, 2008.
V. A. Mahajan, Shinde, P. D., Borate, H. B., and Wakharkar, R. D., Convenient synthesis of 5-methylene-4-substituted-2(5H)-furanones, Tetrahedron Letters, vol. 46, no. 6, pp. 1009-1012, 2005.
S. S. Patil, Tawade, B. V., and Wadgaonkar, P. P., Convenient synthesis of alpha,alpha `- homo- and alpha,alpha `-hetero-bifunctionalized poly(epsilon-caprolactone)s by ring opening polymerization: the potentially valuable precursors for miktoarm star copolymers, Journal of Polymer Science Part A-Polymer Chemistry, vol. 54, no. 6, pp. 844-860, 2016.
M. Sasikumar, Nikalje, M. D., and Muthukrishnan, M., Convenient synthesis of enantiomerically pure (R)-mexiletine using hydrolytic kinetic resolution method, Tetrahedron-Asymmetry, vol. 20, no. 24, pp. 2814-2817, 2009.
R. A. Joshi, Garud, D. R., Muthukrishnan, M., Joshi, R. R., and Gurjar, M. K., Convenient synthesis of the enantiomerically pure beta-blocker (S)-betaxolol using hydrolytic kinetic resolution, Tetrahedron-Asymmetry, vol. 16, no. 23, pp. 3802-3806, 2005.
N. A. More, Jadhao, N. L., Garud, D. R., and Gajbhiye, J. M., Convenient synthesis of the enantiomerically pure (S)-2,4-dihydroxybutyl-4-hydroxybenzoate using hydrolytic kinetic resolution, Synthetic Communications, vol. 48, no. 16, pp. 2093-2098, 2018.
N. C. Desai, Bhatt, K., Jadeja, D. J., Mehta, H. K., Khedkar, V. M., and Sarkar, D., Conventional and microwave-assisted organic synthesis of novel antimycobacterial agents bearing furan and pyridine hybrids, Drug Development Research, vol. 83, no. 2, pp. 416-431, 2022.
G. Pandey, Dumbre, S. G., Khan, M. Islam, and Shabab, M., Convergent approach toward the synthesis of the stereoisomers of C-6 homologues of 1-deoxynojirimycin and their analogues: evaluation as specific glycosidase inhibitors, Journal of Organic Chemistry, vol. 71, no. 22, pp. 8481-8488, 2006.
A. M. Khayum, Vijayakumar, V., Karak, S., Kandambeth, S., Bhadra, M., Suresh, K., Acharambath, N., Kurungot, S., and Banerjee, R., Convergent covalent organic framework thin sheets as flexible supercapacitor electrodes, ACS Applied Material & Interfaces, vol. 10, no. 33, pp. 28139-28146, 2018.
K. Taniguchi, Kusumawati, E. N., Nanao, H., Rode, C. V., Sato, O., Yamaguchi, A., and Shirai, M., Conversion of benzyl phenyl ether to monoaromatics in high-temperature aqueous ethanol solution under high-pressure carbon dioxide conditions, New Journal of Chemistry, vol. 47, no. 27, pp. 12561-12569, 2023.
P. Bhaumik, Dhepe, P. Laxmikant, Dmitry, M., and Olga, S., Conversion of biomass into sugars, in Biomass sugars for non-fuel applications, Cambridge, UK: Royal Society of Chemistry, 2015, pp. 1-53.
A. Shrotri, Tanksale, A., Beltramini, J. Norberto, Gurav, H., and Chilukuri, S. V., Conversion of cellulose to polyols over promoted nickel catalysts, Catalysis Science & Technology, vol. 2, no. 9, pp. 1852-1858, 2012.
B. M. Matsagar, Munshi, M. K., Kelkar, A. A., and Dhepe, P. Laxmikant, Conversion of concentrated sugar solutions into 5-hydroxymethyl furfural and furfural using Bronsted acidic ionic liquids, Catalysis Science & Technology, vol. 5, no. 12, pp. 5086-5090, 2015.
G. Deshmukh and Krishnamoorthy, K., Conversion of curved assemblies into two dimensional sheets, Nanoscale, vol. 11, no. 12, pp. 5732-5736, 2019.
H. Kakkad, Khot, M., Zinjarde, S. S., RaviKumar, A., V. Kumar, R., and Kulkarni, B. D., Conversion of dried aspergillus candidus mycelia grown on waste whey to biodiesel by in situ acid transesterification, Bioresource Technology, vol. 197, pp. 502-507, 2015.

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