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S. P. Chavan, Khairnar, L. B., Pawar, K. P., Chavan, P. N., and Kawale, S. A., Enantioselective syntheses of (R)-pipecolic acid, (2R,3R)-3-hydroxypipecolic acid, beta-(+)-conhydrine and (-)-swainsonine using an aziridine derived common chiral synthon, RSC Advances, vol. 5, no. 62, pp. 50580-50590, 2015.
P. K. Baruah, Gonnade, R. G., and Sanjayan, G. J., Enantioselective syntheses of (-)-pinellic acid, alpha- and beta-dimorphecolic acid, Tetrahedron, vol. 63, no. 32, pp. 7624-7633, 2007.
S. B. Nikam and Asha, S. K., Enantioselective separation using chiral amino acid functionalized polyfluorene coated on mesoporous anodic aluminum oxide membranes (vol 92, pg 6850, 2020), Analytical Chemistry, vol. 93, no. 29, p. 10388, 2021.
S. B. Nikam and Asha, S. K., Enantioselective separation using chiral amino acid functionalized polyfluorene coated on mesoporous anodic aluminum oxide membranes, Analytical Chemistry, vol. 92, no. 10, pp. 6850-6857, 2020.
S. B. Nikam and K, A. S., Enantioselective separation of amino acids using chiral polystyrene microspheres synthesized by a post-polymer modification approach, ACS Polymers Au, vol. 2, no. 4, pp. 257–265, 2022.
H. S. Patil, Nikalje, M. D., Chopade, A. U., and Chopade, M. U., Enantioselective reduction of ketones and synthesis of 2-methyl-2,3-dihydro-1-benzofuran catalyzed by chiral spiroborate ester, Russian Journal of Organic Chemistry, vol. 57, no. 4, pp. 611-618, 2021.
S. Mukherjee, Shee, S., Poisson, T., Besset, T., and Biju, A. T., Enantioselective N-heterocyclic carbene-catalyzed cascade reaction for the synthesis of pyrroloquinolines via N-H functionalization of indoles, Organic letters , vol. 20, no. 22, pp. 6998-7002, 2018.
B. M. Sharma, Gontala, A., and Kumar, P., Enantioselective modular total synthesis of macrolides Sch725674 and C-4-epi-Sch725674, European Journal of Organic Chemistry, no. 6, pp. 1215-1226, 2016.
S. R. Sonavane and Mhaske, S. B., Enantioselective intramolecular decarboxylative C-H bond func-tionalization of quinazolinones with amino acids by visible light photoredox catalysis, Chemistry-An Asian Journal, vol. 18, no. 13, 2023.
S. Sahoo, Kumar, P., Lefebvre, F., and Halligudi, S. B., Enantioselective hydrogenation of olefins by chiral iridium phosphorothioite complex covalently anchored on mesoporous silica, Journal of Catalysis, vol. 254, no. 1, pp. 91-100, 2008.
A. Kumar Mutyala and Patil, N. T., Enantioselective heterogeneous bronsted acid catalysis, Organic Chemistry Frontiers, vol. 1, no. 5, pp. 582-586, 2014.
S. P. Chavan, Kadam, A. L., and Gonnade, R. G., Enantioselective formal total synthesis of (-)-quinagolide, Organic Letters, vol. 21, no. 22, pp. 9089-9093, 2019.
S. B. Jadhav, Dash, S. Ranjan, Maurya, S., Nanubolu, J. Babu, Vanka, K., and Chegondi, R., Enantioselective Cu(I)-catalyzed borylative cyclization of enone-tethered cyclohexadienones and mechanistic insights, Nature Communications, vol. 13, no. 1, p. 854, 2022.
S. M. Inamdar, Shinde, V. S., and Patil, N. T., Enantioselective cooperative catalysis, Organic & Biomolecular Chemistry, vol. 13, no. 30, pp. 8116-8162, 2015.
C. C. Chintawar, Bhoyare, V. W., Mane, M. V., and Patil, N. T., Enantioselective Au(I)/Au(III) redox catalysis enabled by chiral (P,N)-ligands, Journal of the American Chemical Society, vol. 144, no. 16, pp. 7089-7095, 2022.
P. D. Shinde, Jadhav, V. H., Borate, H. B., Bhide, S. R., Sonawane, K. B., and Wakharkar, R. D., Enantiomeric separation of novel anticancer agent 5-hydroxy-3-(4-methoxyphenyl)-2-(3,4,5-trimethoxyphenyl)-cyclopent-2-en- 1-one, Journal of Chromatography A, vol. 1138, no. 1-2, pp. 184-189, 2007.
B. M. Rajesh, Shinde, M. V., Kannan, M., Srinivas, G., Iqbal, J., and D. Reddy, S., Enantiodivergent routes to (+) and (-)-novioses from (-)-pantolactone, RSC Advances, vol. 3, no. 43, pp. 20291-20297, 2013.
P. Kumar, Pandey, M., Gupta, P., S. Naidu, V., and Dhavale, D. D., Enantio- and diastereocontrolled total synthesis of (+)-strictifolione, European Journal of Organic Chemistry, no. 36, pp. 6993-7004, 2010.
P. Kumar and Naidu, S. V., Enantio- and diastereocontrolled total synthesis of (+)-boronolide, Journal of Organic Chemistry, vol. 71, no. 10, pp. 3935-3941, 2006.
P. Kumar, Dubey, A., and Harbindu, A., Enantio- and diastereocontrolled conversion of chiral epoxides to trans-cyclopropane carboxylates: application to the synthesis of cascarillic acid, grenadamide and L-(-)-CCG-II (vol 10, pg 6987, 2012), Organic & Biomolecular Chemistry, vol. 18, no. 27, p. 5264, 2020.
P. Kumar, Dubey, A., and Harbindu, A., Enantio- and diastereocontrolled conversion of chiral epoxides to trans-cyclopropane carboxylates: application to the synthesis of cascarillic acid, grenadamide and L-(-)-CCG-II, Organic & Biomolecular Chemistry, vol. 10, no. 34, pp. 6987-6994, 2012.
A. B. Lende, Dinker, M. K., Bhosale, V. K., Kamble, S. P., Meshram, P. D., and Kulkarni, P. S., Emulsion ionic liquid membranes (EILMs) for removal of Pb(II) from aqueous solutions, RSC Advances, vol. 4, no. 94, pp. 52316-52323, 2014.
V. Nair, Menon, R. S., Biju, A. T., Sinu, C. R., Paul, R. Rajan, Jose, A., and Sreekumar, V., Employing homoenolates generated by NHC catalysis in carbon-carbon bond-forming reactions: state of the art, Chemical Society Reviews, vol. 40, no. 11, pp. 5336-5346, 2011.
T. Roy, Bhojgude, S. Suresh, Kaicharla, T., Thangaraj, M., Garai, B., and Biju, A. T., Employing carboxylic acids in aryne multicomponent coupling triggered by aziridines/azetidines, Organic Chemistry Frontiers, vol. 3, no. 1, pp. 71-76, 2016.
A. Bhunia and Biju, A. T., Employing arynes in transition-metal-free, N-heterocycles initiated multicomponent reactions, Synlett, vol. 25, no. 5, pp. 608-614, 2014.
S. Suresh Bhojgude, Kaicharla, T., and Biju, A. T., Employing arynes in transition-metal-free monoarylation of aromatic tertiary amines, Organic Letters, vol. 15, no. 21, pp. 5452-5455, 2013.
S. Suresh Bhojgude, Bhunia, A., and Biju, A. T., Employing arynes in diels–alder reactions and transition-metal-free multicomponent coupling and arylation reactions, Accounts of Chemical Research, vol. 49, no. 9, pp. 1658-1670, 2016.
R. N. Gaykar, Bhunia, A., and Biju, A. T., Employing arynes for the generation of aryl anion equivalents and subsequent reaction with aldehydes, Journal of Organic Chemistry, vol. 83, no. 18, pp. 11333-11340, 2018.
R. S. Birajdar, Bodkhe, D., Gupta, P., Shaikh, M. H., Ramekar, R., and Chikkali, S. H., Emerging trends in olefin polymerization: a perspective, Journal of macromolecular science part A- pure and applied chemistry , vol. 60, no. 11, pp. 731-750, 2023.
G. Panditrao, Bhowmick, R., Meena, C., and Sarkar, R. Rup, Emerging landscape of molecular interaction networks: opportunities, challenges and prospects, Journal of Biosciences, vol. 47, no. 2, p. 24, 2022.
D. J. Late, Rout, C. Sekhar, Chakravarty, D., and Ratha, S., Emerging energy applications of two-dimensional layered materials, Canadian Chemical Transactions, vol. 3, no. 2, pp. 118-157, 2015.
C. Meena, Hens, C., Acharyya, S., Haber, S., Boccaletti, S., and Barzel, B., Emergent stability in complex network dynamics, Nature Physics, vol. 19, no. 7, p. 1033+, 2023.
A. Singh, Bhattacharyya, S. Maitra, and Singh, Y., Emergence of cooperatively reorganizing cluster and super-Arrhenius dynamics of fragile supercooled liquids, Physical Review E, vol. 103, no. 3, p. 032611, 2021.
K. Gupta, Jha, P. Kumar, Dadwal, A., Debnath, A. K., Jaiswal, I., Rana, S., Joy, P. A., and Ballav, N., Embedding S=1/2 Kagome-like lattice in reduced graphene oxide, Journal of Physical Chemistry Letters, vol. 10, no. 11, pp. 2663-2668, 2019.
K. Dinkar Sarode, V. Kumar, R., and Kulkarni, B. D., Embedded multiple shooting methodology in a genetic algorithm framework for parameter estimation and state identification of complex systems, Chemical Engineering Science, vol. 134, pp. 605-618, 2015.
H. Singh, Bhagwat, S., Jouen, S., Lefez, B., Athawale, A. A., Hannoyer, B., and Ogale, S., Elucidation of the role of hexamine and other precursors in the formation of magnetite nanorods and their stoichiometry, Physical Chemistry Chemical Physics, vol. 12, no. 13, pp. 3246-3253, 2010.
V. Bhavnani, Elucidation of molecular mechanism of stability of the heme-regulated eIF2α kinase upon binding of its ligand, hemin in its catalytic kinase domain, Journal of Biomolecular Structure and Dynamics , vol. 35, pp. 1-17, 2017.
G. Rai and Kumar, A., Elucidation of ionic interactions in the protic ionic liquid solutions by isothermal titration calorimetry, Journal of Physical Chemistry B, vol. 118, no. 15, pp. 4160-4168, 2014.
P. Ghosh and Ghosha, D., Elucidating the photoprotection mechanism of eumelanin monomers, Journal of Physical Chemistry B, vol. 121, no. 24, pp. 5988-5994, 2017.
S. R. Keshri, Mandal, I., Ganisetti, S., Kasimuthumaniyan, S., Kumar, R., Gaddam, A., Shelke, A., Ajithkumar, T. G., Gosvami, N. Nand, Krishnan, N. M. Anoop, and Allu, A. R., Elucidating the influence of structure and Ag+ -Na+ ion-exchange on crack-resistance and ionic conductivity of Na3Al1.8Si1.65 P-1.8 O-12 glass electrolyte, Acta Materialia, vol. 227, p. 117745, 2022.
A. P. Tathod and Dhepe, P. L., Elucidating the effect of solid base on the hydrogenation of C5 and C6 sugars over Pt–Sn bimetallic catalyst at room temperature, Carbohydrate Research, vol. 505, p. 108341, 2021.
S. Prasad, Ganisetti, S., Jana, A., Kant, S., Sinha, P. K., Tripathy, S., Illath, K., Ajithkumar, T. G., Annapurna, K., Allu, A. R., and Biswas, K., Elucidating the effect of CaF2 on structure, biocompatibility and antibacterial properties of S53P4 glass (vol 831, 154704, 2020), Journal of Alloys and Compounds, vol. 883, p. 161253, 2021.
S. Prasad, Ganisetti, S., Jana, A., Kant, S., Sinha, P. K., Tripathy, S., Illath, K., Ajithkumar, T. G., Annapurna, K., Allu, A. R., and Biswas, K., Elucidating the effect of CaF 2 on structure, biocompatibility and antibacterial properties of S53P4 glass, Journal of Alloys and Compounds, vol. 831, p. 154704, 2020.
S. Kirti, Bhandari, V. M., Jena, J., and Bhattacharyya, A. S., Elucidating efficacy of biomass derived nanocomposites in water and wastewater treatment, Journal of environmental management , vol. 226, pp. 95-105, 2018.
S. Singh, Bhardwaj, S., Verma, C., Chhajed, M., Balayan, K., Ghosh, K., and Maji, P. K., Elliptically birefringent chemically tuned liquid crystalline nanocellulose composites for photonic applications, Journal of Molecular Liquids, vol. 366, p. 120326, 2022.
A. H. Chaurasiya, Jaiswal, M. R., Bayatigeri, S., Kahar, S., Tiwari, S., Unnikrishnan, A. G., and Kulkarni, M. J., Elevated level of glycated KQTALVELVK peptide of albumin is associated with the risk of diabetic nephropathy, ACS Omega, vol. 8, no. 23, pp. 20654-20660, 2023.
C. U. Saraf, Elements of managing transfer of technology from laboratory to industry: technology transfer management (TTM), Journal of Scientific & Industrial Research, vol. 73, no. 11, pp. 704-710, 2014.
A. Dey, Mondal, S. Islam, Sen, S., Ghosh, D., and G. Patwari, N., Electrostatics determine vibrational frequency shifts in hydrogen bonded complexes, Physical Chemistry Chemical Physics, vol. 16, no. 46, pp. 25247-25250, 2014.
S. Bose, Chakrabarty, S., and Ghosh, D., Electrostatic origin of the red solvatochromic shift of DFHBDI in RNA spinach, Journal of Physical Chemistry B, vol. 121, no. 18, pp. 4790-4798, 2017.
M. Pillai, Das, A., and Jha, S. Kumar, Electrostatic modulation of intramolecular and intermolecular interactions during the formation of an amyloid-like assembly, Biochemistry, vol. 62, no. 12, pp. 1890-1905, 2023.
S. Chatterjee, Haldar, T., Ghosh, D., and Bagchi, S., Electrostatic manifestation of micro-heterogeneous solvation structures in deep-eutectic solvents: a spectroscopic approach, Journal of Physical Chemistry B, vol. 124, no. 18, pp. 3709-3715, 2020.
T. Haldar and Bagchi, S., Electrostatic interactions are key to C=O n-pi* shifts: an experimental proof, Journal of Physical Chemistry Letters, vol. 7, no. 12, pp. 2270-2275, 2016.
L. Wang, Dehe, D., Philippi, T., Seifert, A., Ernst, S., Zhou, Z., Hartmann, M., Taylor, R. N. Klupp, Singh, A. Pal, Jia, M., and Thiel, W. R., Electrostatic grafting of a triphenylphosphine sulfonate on SBA-15: application in palladium catalyzed hydrogenation, Catalysis Science & Technology, vol. 2, no. 6, pp. 1188-1195, 2012.
B. Joshi, Samuel, E., Kim, Y., Kim, T., El-Newehy, M., Aldalbahi, A., and Yoon, S. S., Electrospun zinc-manganese bimetallic oxide carbon nanofibers as freestanding supercapacitor electrodes, International Journal of Energy Research, vol. 46, no. 15, pp. 22100-22112, 2022.
A. A. Shitole, Raut, P. W., Sharma, N., Giram, P., Khandwekar, A. P., and Garnaik, B., Electrospun polycaprolactone/hydroxyapatite/ZnO nanofibers as potential biomaterials for bone tissue regeneration, Journal of Materials Science-Materials In Medicine, vol. 30, no. 5, p. 51, 2019.
P. P. Mahamuni-Badiger, Patil, P. M., Patel, P. R., Dhanavade, M. J., V. Badiger, M., Marathe, Y. N., and Bohara, R. A., Electrospun poly(3-hydroxybutyrate-co-3-hydroxyvalerate)/polyethylene oxide (PEO) microfibers reinforced with ZnO nanocrystals for antibacterial and antibiofilm wound dressing applications, New Journal of Chemistry, vol. 44, no. 23, pp. 9754-9766, 2020.
P. Yadav, Malik, W., Dwivedi, P. Kumari, Jones, L. A., and Shelke, M. V., Electrospun nanofibers of Tin phosphide (SnP0.94) nanoparticles encapsulated in a carbon matrix: a tunable conversion-cum-alloying lithium storage anode, Energy & Fuels, vol. 34, no. 6, pp. 7648-7657, 2020.
A. Saul Alvarez-Suarez, Dastager, S. G., Bogdanchikova, N., Grande, D., Pestryakov, A., Garcia-Ramos, J. Carlos, Perez-Gonzalez, G. Lizeth, Juarez-Moreno, K., Toledano-Magana, Y., Smolentseva, E., Paz-Gonzalez, J. Antonio, Popova, T., Rachkovskaya, L., Nimaev, V., Kotlyarova, A., Korolev, M., Letyagin, A., and Villarreal-Gomez, L. Jesus, Electrospun fibers and sorbents as a possible basis for effective composite wound dressings, Micromachines, vol. 11, no. 4, p. 441, 2020.
R. Naphade and Jog, J. Prakash, Electrospinning of PHBV/ZnO membranes: structure and properties, Fibers and Polymers, vol. 13, no. 6, pp. 692-697, 2012.
A. Wali, Zhang, Y., Sengupta, P., Higaki, Y., Takahara, A., and Badiger, M. V., Electrospinning of non-ionic cellulose ethers/polyvinyl alcohol nanofibers: characterization and applications, Carbohydrate Polymers, vol. 181, pp. 175-182, 2018.
N. T. Patil, Konala, A., Sravanti, S., Singh, A., Ummanni, R., and Sridhar, B., Electrophile induced branching cascade: a powerful approach to access various molecular scaffolds and their exploration as novel anti-mycobacterial agents, Chemical Communications, vol. 49, no. 86, pp. 10109-10111, 2013.
S. Sasmal, Talukdar, K., Nayak, M. K., Vaval, N., and Pal, S., Electron–nucleus scalar–pseudoscalar interaction in PbF: Z-vector study in the relativistic coupled-cluster framework, Molecular Physics, 2017.
J. Zhang, Balaraman, E., Leitus, G., and Milstein, D., Electron-rich PNP- and PNN-type Ru(II) hydrido-borohydride complexes. synthesis, structure and catalytic activity towards dehydrogenation of alcohols and hydrogenation of esters, Organometallics, vol. 30, no. 21, pp. 5716–5724, 2011.
S. S. Mani, Rajendran, S., Nalajala, N., Mathew, T., and Gopinath, C. S., Electronically integrated mesoporous Ag-TiO2 nanocomposite thin films for efficient solar hydrogen production in direct sunlight, Energy Technology, vol. 10, no. 1, p. 2100356, 2021.
M. Tathavadekar, Biswal, M., Agarkar, S. A., Giribabu, L., and Ogale, S., Electronically and catalytically functional carbon cloth as a permeable and flexible counter electrode for dye sensitized solar cell, Electrochimica Acta, vol. 123, pp. 248-253, 2014.
D. Bhattacharya, Vaval, N., and Pal, S., Electronic transition dipole moments and dipole oscillator strengths within fock-space multi-reference coupled cluster framework: an efficient and novel approach, Journal of Chemical Physics, vol. 138, no. 9, p. 094108, 2013.
D. Bhattacharya, Vaval, N., and Pal, S., Electronic transition dipole moment: a semi-biorthogonal approach within valence universal coupled cluster framework, International Journal of Quantum Chemistry, vol. 114, no. 18, pp. 1212-1219, 2014.
S. Rajaambal, Yadav, A. K., Jha, S. Nath, Bhattacharyya, D., and Gopinath, C. S., Electronic structure-sunlight driven water splitting activity correlation of (Zn1-yGay)(O1-zNz), Physical Chemistry Chemical Physics, vol. 16, no. 43, pp. 23654-23662, 2014.
K. Talukdar, Nayak, M. K., Vaval, N., and Pal, S., Electronic structure parameter of nuclear magnetic quadrupole moment interaction in metal monofluorides, Journal of Chemical Physics, vol. 153, no. 18, p. 184306, 2020.
I. Heidari, Pal, S., Pujari, B. S., and Kanhere, D. G., Electronic structure of spherical quantum dots using coupled cluster method, Journal of Chemical Physics, vol. 127, no. 11, p. 114708, 2007.
R. Jain and Gopinath, C. S., Electronic structure evolution of Pd@Co nanocatalysts under oxidation and reduction conditions and preferential CO oxidation, ChemCatChem, vol. 12, no. 16, pp. 4176-4184, 2020.
R. Ranjan, Mhamane, N. B., Kolekar, S. K., and Gopinath, C. S., Electronic structure evolution from metallic vanadium to metallic VxOy: a nappes study for o2+v gas-solid interaction, Journal of Physical Chemistry C, vol. 126, no. 45, pp. 19136-19146, 2022.
S. U. Shenoy, Gupta, U., Narang, D. S., Late, D. J., Waghmare, U. V., and Rao, C. N. R., Electronic structure and properties of layered gallium telluride, Chemical Physics Letters, vol. 651, pp. 148-154, 2016.
S. Deka and Joy, P. Alias, Electronic structure and ferromagnetism of polycrystalline Zn1-xCoxO (0 <= x <= 0.15), Solid State Communications, vol. 134, no. 10, pp. 665-669, 2005.
M. Mapa, Thushara, K. S., Saha, B., Chakraborty, P., Janet, C. M., Viswanath, R. P., C. Nair, M., Murty, K. V. G. K., and Gopinath, C. S., Electronic structure and catalytic study of solid solution of GaN in ZnO, Chemistry of Materials, vol. 21, no. 13, pp. 2973-2979, 2009.
N. Vaval, Manohar, P. Uday, and Pal, S., Electronic spectra and ionization potentials of halogen oxides using the fock space coupled-cluster method, Collection of Czechoslovac Chemical Communications, vol. 70, no. 7, pp. 851-863, 2005.
S. Zhang, Ogale, S. B., Yu, W., Gao, X., Liu, T., Ghosh, S., Das, G. P., Wee, A. T. S., Greene, R. L., and Venkatesan, T., Electronic manifestation of cation-vacancy-induced magnetic moments in a transparent oxide semiconductor: anatase Nb:TiO2, Advanced Materials, vol. 21, no. 22, p. 2282+, 2009.
B. Tudu, Nalajala, N., Reddy, K. P., Saikia, P., and Gopinath, C. S., Electronic integration and thin film aspects of Au-Pd/rGO/TiO2 for improved solar hydrogen generation, ACS Applied Materials & Interfaces, vol. 11, no. 36, pp. 32869-32878, 2019.
S. Mehta and Joshi, K., Electronic fingerprints for diverse interactions of methanol with various Zn-based systems, Surface Science, vol. 736, p. 122350, 2023.
K. Thirunavukkarasu, Nagarajan, S., and Gopinath, C. S., Electronic decoupling of surface layers from bulk and its influence in oxidation catalysis: a molecular beam study, Applied Surface Science, vol. 256, no. 2, pp. 443-448, 2009.
K. Srinivas, Dangat, Y., Kommagalla, Y., Vanka, K., and Ramana, C. V., Electronic control on linear versus branched alkylation of 2-/3-aroylbenzofurans with acrylates: combined DFT and synthetic studies, Chemistry-A European Journal, vol. 23, no. 31, pp. 7570-7581, 2017.
M. Faizan, Bhamu, K. C., Murtaza, G., He, X., Kulhari, N., AL-Anazy, M. Mana, and Khan, S. Haidar, Electronic and optical properties of vacancy ordered double perovskites A(2)BX(6) (A=Rb, Cs; B=Sn, Pd, Pt; and X=Cl, Br, I): a first principles study, Scientific Reports , vol. 11, no. 1, p. 6965, 2021.
O. Schlesinger, Pasi, M., Dandela, R., Meijler, M. M., and Alfonta, L., Electron transfer rate analysis of a site-specifically wired copper oxidase, Physical Chemistry Chemical Physics, vol. 20, no. 9, pp. 6159-6166, 2018.
J. Sharma, Vivek, J. P., and Vijayamohanan, K. P., Electron transfer behavior of monolayer protected nanoclusters and nanowires of silver and gold, Journal of Nanoscience and Nanotechnology, vol. 6, no. 11, pp. 3464-3469, 2006.
B. Gole, Bar, A. Kumar, Mallick, A., Banerjee, R., and Mukherjee, P. Sarathi, Electron rich porous extended framework as a heterogeneous catalyst for Diels-Alder reactions, Chemical Communications, vol. 49, no. 67, pp. 7439-7441, 2013.
S. Das, Sengupta, T., Dutta, A. Kumar, and Pal, S., Electron detachment and subsequent structural changes of water clusters, Journal of Physical Chemistry A, vol. 120, no. 7, pp. 1065-1073, 2016.
A. J. Blake, de Boissieu, M., and Nangia, A., Electron crystallography, IUCRJ, vol. 6, no. 5, pp. 786-787, 2019.
S. K. Mahapatra, Bodas, D. S., Mandale, A. B., Gangal, S. A., and Bhoraskar, V. N., Electron beam induced surface cross-linking of functional monomers coated on silicon substrate, Materials Letters, vol. 60, no. 11, pp. 1360-1365, 2006.
A. Kumar Dutta, Sengupta, T., Vaval, N., and Pal, S., Electron attachment to DNA and RNA nucleobases: an EOMCC investigation, International Journal of Quantum Chemistry, vol. 115, no. 12, pp. 753-764, 2015.
B. Anothumakkool, Torris, A. A. T., Bhange, S. N., Badiger, M. V., and Kurungot, S., Electrodeposited polyethylenedioxythiophene with infiltrated gel electrolyte interface: a close contest of an all-solid-state supercapacitor with its liquid-state counterpart, Nanoscale, vol. 6, no. 11, pp. 5944-5952, 2014.
S. Sahoo, Mondal, R., Late, D. J., and Rout, C. S., Electrodeposited nickel cobalt manganese based mixed sulfide nanosheets for high performance supercapacitor application, Microporous and Mesoporous Materials, vol. 244, pp. 101-108, 2017.
S. Dilwale, Ghosh, M., Vijayakumar, V., and Kurungot, S., Electrodeposited layered sodium vanadyl phosphate (NaxVOPO4 center dot nH(2)O) as cathode material for aqueous rechargeable zinc metal batteries, Energy & Fuels, vol. 36, no. 12, pp. 6520-6531, 2022.
A. M. Chandran, Karumuthil, S. Cherumanni, Singh, A. K., and Prasad, B. L. V., Electrodeposited Co-Mn-Sn multicomponent alloy as an efficient electrocatalyst for hydrogen evolution reaction, International Journal of Hydrogen Energy, vol. 49, pp. 658-667, 2024.
M. Kurian, Vijayakumar, V., Manna, N., Kanheerampockil, F., Bhat, S., and Kurungot, S., Electrode|electrolyte interface enhancement in quasi-solid-state zinc-air batteries through an anion conducting polymer electrolyte interlayer by in situ polymerization, Journal of Materials Chemistry A, vol. 11, no. 27, pp. 14776-14787, 2023.
R. Sivakumar, Gopinath, C. S., Jayachandran, M., and Sanjeeviraja, C., Electrochromic device (ECD) cell characterization on electron beam evaporated MoO3 films by intercalating/deintercalating the H+ ions, Current Applied Physics, vol. 7, no. 1, pp. 76-86, 2007.
Z. Manappadan and Selvaraj, K., Electrochemically tuned synergistic nano-interface of a tertiary Ni(OH)(2)-NiO(OH)/NixP heterojunction material for enhanced and durable alkaline water splitting, ChemistrySelect, vol. 7, no. 30, p. e202201171, 2022.
M. G. Lakhe, Joshi, P., Choudhary, R. J., Ganesan, V., Joag, D. S., and Chaure, N. B., Electrochemically synthesized faceted CuInTe2 nanorods as an electron source for field emission applications, New Journal of Chemistry, vol. 42, no. 7, pp. 5284-5294, 2018.
B. Anothumakkool and Kurungot, S., Electrochemically grown nanoporous MnO2 nanowalls on a porous carbon substrate with enhanced capacitance through faster ionic and electrical mobility, Chemical Communications, vol. 50, no. 54, pp. 7188-7190, 2014.
M. B. Erande, Suryawanshi, S. R., More, M. A., and Late, D. J., Electrochemically exfoliated black phosphorus nanosheets - prospective field emitters, European Journal of Inorganic Chemistry, no. 19, pp. 3102-3107, 2015.
S. M. Suryawanshi, Sahoo, S., Shaligram, P. S., Manna, N., and Samanta, R. C., Electrochemically enabled (3+2) cycloaddition of unbiased alkenes and β-dicarbonyls, Chemical Communications, vol. 60, no. 45, pp. 5836-5839, 2024.

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