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H. Manek, Nawale, L., Jadhav, N. J., and Sarkar, D., High throughput screening of inhibitors for tuberculosis at NCL : a novel drug discovery initiative from CSIR, in 73rd CSIR Foundation Day, at CSIR-National Chemical Laboratory, Pune, CSIR-National Chemical Laboratory, Pune, 2015.
T. Dharmadhikari, Rajput, V., Yadav, R., Boargaonkar, R., Patil, D., Kale, S., Kamble, S. P., Dastager, S. G., and Dharne, M. S., High throughput sequencing based direct detection of SARS-CoV-2 fragments in wastewater of Pune, West India, Science of the Total Environment, vol. 807, p. 151038, 2022.
A. Kumar and Pawar, S. S., High viscosity of ionic liquids causes rate retardation of Diels-Alder reactions, Science China-Chemistry, vol. 55, no. 8, pp. 1633-1637, 2012.
M. N. Thorat and Dastager, S. G., High yield production of cellulose by a komagataeibacter rhaeticus PG2 strain isolated from pomegranate as a new host, RSC Advances, vol. 8, no. 52, pp. 29797-29805, 2018.
T. Ibomcha Singh, Maibam, A., Cha, D. Chan, Yoo, S., BabaRao, R., Lee, S. Uck, and Lee, S., High-alkaline water-splitting activity of mesoporous 3D heterostructures: an amorphous-shell@crystalline-core nano-assembly of Co-Ni-phosphate ultrathin-nanosheets and V- doped cobalt-nitride nanowires, Advanced Science, vol. 9, no. 23, p. 2201311, 2022.
V. Kuyil Azha Muniraj, Dwivedi, P. Kumari, Tamhane, P. Shivaji, Szunerits, S., Boukherroub, R., and Shelke, M. Vilas, High-energy flexible supercapacitor-synergistic effects of polyhydroquinone and RuO2 center dot xH(2)O with microsized, few-layered, self-supportive exfoliated-graphite sheets, ACS Applied Materials & Interfaces, vol. 11, no. 20, pp. 18349-18360, 2019.
M. S. Damle, Giri, A. P., Sainani, M. N., and Gupta, V. S., Higher accumulation of proteinase inhibitors in flowers than leaves and fruits as a possible basis for differential feeding preference of Helicoverpa armigera on tomato (Lycopersicon esculentum Mill, Cv. Dhanashree), Phytochemistry, vol. 66, no. 22, pp. 2659-2667, 2005.
R. Rajendra, Gangadharan, P. K., Tripathi, S., Kurungot, S., and Ballav, N., High-index faceted Au nanocrystals with highly controllable optical properties and electro-catalytic activity, Nanoscale, vol. 8, no. 46, pp. 19224-19228, 2016.
P. Kumar Jha, Singh, S. Kumar, Kumar, V., Rana, S., Kurungot, S., and Ballav, N., High-level supercapacitive performance of chemically reduced graphene oxide, Chem, vol. 3, no. 5, pp. 846-860, 2017.
S. K. Soni and Khire, J. Malhar, Highly acidic phytase from Aspergillus niger NCIM 563 under submerged fermentation, FEBS Journal, vol. 273, p. 301, 2006.
V. R. Choudhary, Jha, R., and Choudhari, P. A., Highly active and reusable catalyst from Fe-Mg-hydrotalcite anionic clay for friedel-crafts type benzylation reactions, Journal of Chemical Sciences, vol. 117, no. 6, pp. 635-639, 2005.
P. Unnikrishnan and Srinivas, D., Highly active and reusable ternary oxide catalyst for dialkyl carbonates synthesis, Journal of Molecular Catalysis A-Chemical, vol. 398, pp. 42-49, 2015.
A. Vinu, Devassy, B. M., Halligudi, S. B., Bohlmann, W., and Hartmann, M., Highly active and selective AlSBA-15 catalysts for the vapor phase tert-butylation of phenol, Applied Catalysis A-General, vol. 281, no. 1-2, pp. 207-213, 2005.
D. Chand, Ramasamy, S., and Suresh, C. G., Highly active bile salt hydrolase from enterococcus faecalis shows positive cooperative kinetics, Process Biochemistry, vol. 51, no. 2, pp. 263-269, 2016.
V. Bokade, Moondra, H., and Niphadkar, P., Highly active Brønsted acidic silicon phosphate catalyst for direct conversion of glucose to levulinic acid in MIBK–water biphasic system, SN Applied Sciences, vol. 2, no. 1, p. Article number: 51, 2020.
V. S. Kshirsagar, Vijayanand, S., Potdar, H. S., Joy, P. Alias, Patil, K. R., and Rode, C. V., Highly active nanostructured Co3O4 catalyst with tunable selectivity for liquid phase air oxidation of p-cresol, Chemistry Letters, vol. 37, no. 3, pp. 310-311, 2008.
H. - R. Liu, Gomes, P. T., Costa, S. I., Duarte, M. T., Branquinho, R., Fernandes, A. C., Chien, J. C. W., Singh, R. P., and Marques, M. M., Highly active new alpha-diimine nickel catalyst for the polymerization of alpha-olefins, Journal of Organometallic Chemistry, vol. 690, no. 5, pp. 1314-1323, 2005.
J. Rathod, Sharma, P., Pandey, P., Singh, A. P., and Kumar, P., Highly active recyclable SBA-15-EDTA-Pd catalyst for Mizoroki-Heck, Stille and Kumada C-C coupling reactions, Journal of Porous Materials, vol. 24, no. 4, pp. 837-846, 2017.
B. Punji, Mague, J. T., and Balakrishna, M. S., Highly air-stable anionic mononuclear and neutral binuclear palladium(ii) complexes for C−C and C−N bond-forming reactions, Inorganic Chemistry, vol. 46, no. 26, pp. 11316–11327, 2007.
A. A. Deshmukh, Kinage, A. K., and Kumar, R., Highly chemoselective catalytic system for hydrogenation of diketones to ketols: an environmentally benevolent system, Catalysis Letters, vol. 120, no. 3-4, pp. 257-260, 2008.
F. Ram, Suresh, K., Torris, A., Kumaraswamy, G., and Shanmuganathan, K., Highly compressible ceramic/polymer aerogel-based piezoelectric nanogenerators with enhanced mechanical energy harvesting property, Ceramics International, vol. 47, no. 11, pp. 15750-15758, 2021.
M. Pandey, Chowdhury, P. Sarathi, Dutta, A. Kumar, Kumar, P., and Pal, S., Highly concise and practical route to clavaminols, sphinganine and (+)-spisulosine via indium mediated allylation of alpha-hydrazino aldehyde and a theoretical insight into the stereochemical aspects of the reaction, RSC Advances, vol. 3, no. 35, pp. 15442-15448, 2013.
O. P. Bande, Jadhav, V. H., Puranik, V. G., and Dhavale, D. D., Highly diastereoselective 1,3-dipolar cycloaddition of a D-galactose-derived nitrone with dimethyl maleate: synthesis of polyhydroxylated perhydroazaazulenes, Synlett, no. 12, pp. 1959-1963, 2009.
S. P. Chavan, Garai, S., and Kalkote, U. R., Highly diastereoselective total synthesis of (+/-)-heritonin and (+/-)-heritol, Tetrahedron, vol. 68, no. 40, pp. 8509-8514, 2012.
B. Govinda Rao, Sudarsanam, P., Rao, T. Venkateshw, Amin, M. Hassan, Bhargava, S. K., and Reddy, B. M., Highly dispersed MnOx nanoparticles on shape-controlled SiO2 spheres for ecofriendly selective allylic oxidation of cyclohexene, Catalysis Letters, vol. 150, no. 10, pp. 3023-3035, 2020.
R. Salunke, Mourier, T., Banerjee, M., Pain, A., and Shanmugam, D., Highly diverged novel subunit composition of apicomplexan F-type ATP synthase identified from Toxoplasma gondii, Plos Biology, vol. 16, no. 7, p. e2006128, 2018.
A. B. Deshmukh, Dwivedi, P. K., Nalawade, A. C., Qureshi, M. S., and Shelke, M. V., Highly durable Li-ion battery anode from Fe3O4 nanoparticles embedded in nitrogen-doped porous carbon with improved rate capabilities, Journal of Materials Science, vol. 55, no. 33, pp. 15667-15680, 2020.
J. Justus, Vinu, A., Devassy, B. M., Balasubramanian, V. V., Bohringer, W., Fletcher, J. C. Q., and Halligudi, S. B., Highly efficient and chemo selective catalyst system for the synthesis of blossom orange fragrance and flavoring compounds, Catalysis Communications, vol. 9, no. 7, pp. 1671-1675, 2008.
R. Kupwade, Mitragotri, S. D., Kulkarni, M. A., Desai, U. V., and Wadagaonkar, P. P., Highly efficient and extremely simple protocol for the oxidation α-hydroxyphosphonates to α-ketophosphonates using Dess-Martin periodinane, ARKIVOC, vol. 4, 2021.
P. Rajan Sruthi, Nimmi, P. Purayil, Babu, S. Santhosh, and Anas, S., Highly efficient and reusable polymer supported palladium catalyst for copper free sonogashira reaction in water, ChemistrySelect, vol. 7, no. 14, p. e202104273, 2022.
P. Kandasamy, Gogoi, P., Venugopalan, A. Thareparam, and Raja, T., Highly efficient and reusable Ru-NaY catalyst for the base free oxidation of 5-Hydroxymethylfurfural to 2,5-Furandicarboxylic acid, Catalysis Today, vol. 375, no. 145-154, 2021.
V. R. Choudhary, Highly efficient catalyst derived from Ni-Fe-hydrotalcite for solvent-free O- or S-acetylation of alcohols, phenols and thiols at room temperature, Proceedings of the National Academy of Sciences India Section A-Physical Sciences, vol. 83, no. 1, pp. 15-19, 2013.
G. Ratrey, Solanki, B. S., Kamble, S. P., and V. Rode, C., Highly efficient chemoselective hydrogenation of 5-HMF to BHMF over reusable bimetallic Pd-Ir/C catalyst, ChemistrySelect, vol. 7, no. 23, p. e202200456, 2022.
A. Awasthi, Mukherjee, A., Singh, M., Rathee, G., Vanka, K., and Chandra, R., Highly efficient chemoselective N-tert butoxycarbonylation of aliphatic/aromatic/heterocyclic amines using diphenylglycoluril as organocatalyst, Tetrahedron, vol. 76, no. 23, p. 131223, 2020.
S. Iwama, Kuyama, K., Mori, Y., Manoj, K., Gonnade, R. G., Suzuki, K., Hughes, C. E., P. Williams, A., Harris, K. D. M., Veesler, S., Takahashi, H., Tsue, H., and Tamura, R., Highly efficient chiral resolution of DL-arginine by cocrystal formation followed by recrystallization under preferential-enrichment conditions, Chemistry-A European Journal, vol. 20, no. 33, pp. 10343-10350, 2014.
P. Tripathi, Gupta, B. K., Bhatnagar, A., Patel, C. R. P., Banker, P. K., Late, D. J., More, M. A., Lalla, N. P., Phase, D. M., Choudhary, R. J., Shaz, M. A., Ajayan, P. M., and Srivastava, O. N., Highly efficient field emission properties of radially aligned carbon nanotubes, Journal of Materials Chemistry C, vol. 6, no. 24, pp. 6584-6590, 2018.
A. Kumar Singh and Sudhakar, V., Highly efficient method of utilizing waste silica hazards, Process Safety and Environmental Protection, vol. 153, pp. 239-248, 2021.
J. Heda, Niphadkar, P., Mudliar, S., and Bokade, V., Highly efficient micro-meso acidic H-USY catalyst for one step conversion of wheat straw to ethyl levulinate (biofuel additive), Microporous and Mesoporous Materials, vol. 306, p. 110474, 2020.
T. V. Kotbagi, Gurav, H. R., Nagpure, A. S., Chilukuri, S. V., and Bakker, M. G., Highly efficient nitrogen-doped hierarchically porous carbon supported Ni nanoparticles for the selective hydrogenation of furfural to furfuryl alcohol, RSC Advances, vol. 6, no. 72, pp. 67662-67668, 2016.
S. Abdul Rash Mulla, Pathan, M. Y., Chavan, S. S., Gample, S. P., and Sarkar, D., Highly efficient one-pot multi-component synthesis of alpha-aminophosphonates and bis-alpha-aminophosphonates catalyzed by heterogeneous reusable silica supported dodecatungstophosphoric acid (DTP/SiO2) at ambient temperature and their antitubercular eval, RSC Advances, vol. 4, no. 15, pp. 7666-7672, 2014.
V. A. Murugan, Viswanath, A. Kasi, Gopinath, C. S., and Vijayamohanan, K., Highly efficient organic-inorganic poly(3,4-ethylenedioxythiophene)-molybdenum trioxide nanocomposite electrodes for electrochemical supercapacitor, Journal of Applied Physics, vol. 100, no. 7, p. Article No. 074319, 2006.
S. B. Kamble, Swami, R. K., Sakate, S. S., and Rode, C. V., Highly efficient povidone-phosphotungstic acid catalyst for the tandem acetalization of aldehydes to bis- and tris(indolyl)methanes, ChemPlusChem, vol. 78, no. 11, pp. 1393-1399, 2013.
S. Janampelli and Darbha, S., Highly efficient Pt-MoOx/ZrO2 catalyst for green diesel production, Catalysis Communications, vol. 125, pp. 70-76, 2019.
S. Munirasu, Aggarwal, R., and Baskaran, D., Highly efficient recyclable hydrated-clay supported catalytic system for atom transfer radical polymerization, Chemical Communications, no. 30, pp. 4518-4520, 2009.
T. Vivekanand, Vinoth, P., Agieshkumar, B., Sampath, N., Sudalai, A., Menendez, C., and Sridharan, V., Highly efficient regioselective synthesis of pyrroles via a tandem enamine formation-Michael addition-cyclization sequence under catalyst- and solvent-free conditions, Green Chemistry, vol. 17, no. 6, pp. 3415-3423, 2015.
N. S. Pagar and Deshpande, R. M., Highly efficient rhodium-phosphite catalyzed hydroformylation of camphene and other terpenes, Asian Journal of Chemistry, vol. 31, no. 1, pp. 213-219, 2019.
K. M. Patil, Naik, R. J., Rajpal,, Fernandes, M., Ganguli, M., and Kumar, V. A., Highly efficient (R-X-R)-type carbamates as molecular transporters for cellular delivery, Journal of the American Chemical Society, vol. 134, no. 17, pp. 7196-7199, 2012.
L. Giribabu, Singh, S. P., Patil, N. M., M. Kantam, L., Gupte, S. P., and Chaudhari, R. V., Highly efficient sulfimidation of 1,3-dithianes by Cu(I) complexes, Synthetic Communications, vol. 38, no. 4, pp. 619-625, 2008.
S. B. Kamble, Shinde, S. H., and Rode, C. V., Highly efficient triphenyl(3-sulfopropyl)phosphonium functionalized phosphotungstic acid on silica as a solid acid catalyst for selective mono-allylation of acetals, Catalysis Science & Technology, vol. 5, no. 8, pp. 4039-4047, 2015.
P. K. Jori and Jadhav, V. H., Highly efficient zirconium based carbonaceous solid acid catalyst for selective synthesis of 5-HMF from fructose and glucose in isopropanol as a solvent, Catalysis Letters, vol. 152, no. 6, pp. 1703-1710, 2022.
S. Sahoo, Panday, R., Kothavade, P., Sharma, V. Bhan, Sowmiyanarayanan, A., Praveenkumar, B., Zareba, J. K., Kabra, D., Shanmuganathan, K., and Boomishankar, R., Highly electrostrictive salt cocrystal and the piezoelectric nanogenerator application of its 3D-printed polymer composite, ACS Applied Materials and Interfaces , vol. 16, no. 20, pp. 26406-26416, 2024.
A. C. Shaikh, Ranade, D. S., Thorat, S., Maity, A., Kulkarni, P. P., Gonnade, R. G., Munshi, P., and Patil, N. T., Highly emissive organic solids with remarkably broad color tunability based on N,C-chelate, four-coordinate organoborons, Chemical Communications, vol. 51, no. 89, pp. 16115-16118, 2015.
V. S. Koshti, Mote, N. R., Gonnade, R. G., and Chikkali, S. H., Highly enantioselective Pd-catalyzed synthesis of P-stereogenic supramolecular phosphines, self-assembly, and implication, Organometallics, vol. 34, no. 20, pp. 4802-4805, 2015.
K. V. Khopade, Sen, A., Birajdar, R. S., Paulbudhe, U. P., Kavale, D. S., Shinde, P. S., Mhaske, S. B., and Chikkali, S. H., Highly enantioselective synthesis of sitagliptin, Asian Journal of Organic Chemistry, vol. 9, no. 2, pp. 189-191, 2020.
B. K. Balan and Kurungot, S., Highly exposed and activity modulated sandwich type Pt thin layer catalyst with enhanced utilization, Journal of Materials Chemistry, vol. 21, no. 47, pp. 19039-19048, 2011.
F. Ram, Radhakrishnan, S., Ambone, T., and Shanmuganathan, K., Highly flexible mechanical energy harvester based on nylon 11 ferroelectric nanocomposites, ACS Applied Polymer Materials, vol. 1, no. 8, pp. 1998–2005, 2019.
R. A. Nayak, Bhat, S. A., Shanker, G., Rao, D. S. S., and Yelamaggad, C. V., Highly frustrated liquid crystal phases in optically active dimers: synthesis and rich phase transitional behavior, New Journal of Chemistry, vol. 43, no. 5, pp. 2148-2162 , 2019.
T. Ponrathnam, Behere, I., Ponrathnam, S., and Ingavle, G., Highly interconnected porous monolithic and beaded polymers using high internal phase emulsion polymerization: tuning porous architecture through synthesis variables, Polymer International, vol. 72, no. 4, pp. 451-466, 2023.
W. Fang, Paul, S., Capron, M., Biradar, A. V., Umbarkar, S. B., Dongare, M. K., Dumeignil, F., and Jalowiecki-Duhamel, L., Highly loaded well dispersed stable Ni species in NiXMg2AlOY nanocomposites: application to hydrogen production from bioethanol, Applied Catalysis B-Environmental, vol. 166, pp. 485-496, 2015.
A. S. Ethiraj, Kharrazi, S., Hebalkar, N., Urban, J., Sainkar, S. R., and Kulkarni, S. K., Highly photostable dye entrapped core-shell particles, Materials Letters, vol. 61, no. 21, pp. 4738-4742, 2007.
D. Durgalakshmi, R. Rakkesh, A., Kesavan, M., Ganapathy, S., Ajithkumar, T. G., Karthikeyan, S., and Balakumar, S., Highly reactive crystalline-phase-embedded strontium-bioactive nanorods for multimodal bioactive applications, Biomaterials Science, vol. 6, no. 7, pp. 1764-1776, 2018.
G. Senthil Kumar, Zeller, M., Gonnade, R. Ghanshyam, and Prasad, K. Jayarampil, Highly regioselective C4-hydrazinylation of 2,4-dichloroquinolines: expedient synthesis of aminoquinoline substituted pyrrolidin-2,5-diones via hydrazinylquinolines, Tetrahedron Letters, vol. 55, no. 30, pp. 4240-4244, 2014.
S. Pandey and Chikkali, S. H., Highly regioselective isomerizing hydroformylation of long-chain internal olefins catalyzed by a rhodium bis(phosphite) complex, ChemCatChem, vol. 7, no. 21, pp. 3468-3471, 2015.
A. B. Shaikh, Barache, U. B., Khogare, B. T., Goswami, R., Kokare, B. N., Wadgaonkar, P. P., and Gaikwad, S. H., Highly reproducible, simple and selective analytical method for extractive UV-visible spectrophotometric determination of ruthenium (III): analysis of catalyst, fissium alloy and sequential separation, Spectrochimica Acta Part A-Molecular and Biomolecular Spectroscopy, vol. 243, p. 118814, 2020.
P. Das, Ghosh, A., Bhatt, H., and Das, A., Highly selective and dual responsive test paper sensor of Hg2+/ Cr3+ for naked eye detection in neutral water, RSC Advances, vol. 2, no. 9, pp. 3714-3721, 2012.
D. K. Mohapatra, Chatterjee, B., and Gurjar, M. K., Highly selective approach for the total synthesis of (+)-heliconol A, Tetrahedron-Asymmetry, vol. 19, no. 13, pp. 1568-1571, 2008.
K. J. Betsy, Lazar, A., and Vinod, C. P., Highly selective aqueous phase hydrogenation of phenols over nanostructured RuO2 on MCM-41 catalysts, Nano-Structures & Nano-Objects , vol. 13, pp. 36-43, 2018.
B. A. Kakade, Sahoo, S., Halligudi, S. B., and Pillai, V. K., Highly selective catalytic hydrogenation of arenes using rhodium nanoparticles supported on multiwalled carbon nanotubes, Journal of Physical Chemistry C, vol. 112, no. 35, pp. 13317-13319, 2008.
H. Hazarkhani, Kumar, P., Kondiram, K. Sachin, and Gadwal, I. M. Shafi, Highly selective claisen-schmidt condensation catalyzed by silica chloride under solvent-free reaction conditions, Synthetic Communications, vol. 40, no. 19, p. PII 926308853, 2010.
S. Kamble, More, S., and Rode, C. V., Highly selective direct azidation of alcohols over a heterogeneous povidone-phosphotungstic solid acid catalyst, New Journal of Chemistry, vol. 40, no. 12, pp. 10240-10245, 2016.
A. Jha and Rode, C. V., Highly selective liquid-phase aerobic oxidation of vanillyl alcohol to vanillin on cobalt oxide (Co3O4) nanoparticles, New Journal of Chemistry, vol. 37, no. 9, pp. 2669-2674, 2013.
A. K. Kinage, Gupte, S. P., Chaturvedi, R. K., and Chaudhari, R. V., Highly selective synthesis of mono-ethylene glycol phenyl ethers via hydroxyalkoxylation of phenols by cyclic carbonates using large pore zeolites, Catalysis Communications, vol. 9, no. 7, pp. 1649-1655, 2008.
D. Patil, Patil, P., Subramanian, V., Joy, P. Alias, and Potdar, H. S., Highly sensitive and fast responding CO sensor based on Co3O4 nanorods, Talanta, vol. 81, no. 1-2, pp. 37-43, 2010.
D. Patil, Patil, V., and Patil, P., Highly sensitive and selective LPG sensor based on alpha-Fe2O3 nanorods, Sensors and Actuators B-Chemical, vol. 152, no. 2, pp. 299-306, 2011.
P. C. Mane, Shinde, M. D., Varma, S., Chaudhari, B. P., Fatehmulla, A., Shahabuddin, M., Amalnerkar, D. P., Aldhafiri, A. M., and Chaudhari, R. D., Highly sensitive label-free bio-interfacial colorimetric sensor based on silk fibroin-gold nanocomposite for facile detection of chlorpyrifos pesticide, Scientific Reports, vol. 10, no. 1, p. 4198, 2020.
B. Punji, Emge, T. J., and Goldman, A. S., Highly stable adamantyl-substituted pincer-ligated iridium catalyst for alkane dehydrogenation, Organometallics, vol. 29, no. 12, pp. 2702–2709, 2010.
D. Mullangi, Chakraborty, D., Pradeep, A., Koshti, V., Vinod, C. P., Panja, S., Nair, S., and Vaidhyanathan, R., Highly stable COF-supported Co/Co(OH)(2) nanoparticles heterogeneous catalyst for reduction of nitrile/nitro compounds under mild conditions, Small, vol. 14, no. 37, 2018.
P. Pachfule, Kandambeth, S., Diaz, D. Diaz, and Banerjee, R., Highly stable covalent organic framework-Au nanoparticles hybrids for enhanced activity for nitrophenol reduction, Chemical Communications, vol. 50, no. 24, pp. 3169-3172, 2014.
R. Kumar, Shah, S., Bahadur, J., Melnichenko, Y. B., Sen, D., Mazumder, S., Vinod, C. P., and Chowdhury, B., Highly stable In-SBA-15 catalyst for vapor phase Beckmann rearrangement reaction, Microporous and Mesoporous Materials, vol. 234, pp. 293-302, 2016.
P. Yadav, Basu, A., Suryawanshi, A., Game, O. S., and Ogale, S., Highly stable laser-scribed flexible planar microsupercapacitor using mushroom derived carbon electrodes, Advanced Materials Interfaces, vol. 3, no. 11, p. 1600057, 2016.
D. K. Mohapatra, Chatterjee, B., and Gurjar, M. K., Highly stereoselective approach toward the synthesis of the macrolactone core of amphidinolide W, Tetrahedron Letters, vol. 50, no. 7, pp. 755-758, 2009.
S. L. Khamkar, Handore, K. L., Shinde, H. M., and D. Reddy, S., Highly stereoselective diels-alder-based strategy for the synthesis of 3-epi-formicin A and 1-epi-formicin B, Organic Letters, vol. 26, no. 18, pp. 3961-3965, 2024.
B. Soltanzadeh, Jaganathan, A., and Borhan, B., Highly stereoselective, intermolecular haloetherification and haloesterification of allyl amides, Synthesis-Stuttgart, vol. 48, no. 3, pp. A25-A28, 2016.
A. S. Pawbake, Waykar, R. G., Late, D. J., and Jadkar, S. R., Highly transparent wafer-scale synthesis of crystalline WS2 nanoparticle thin film for photodetector and humidity-sensing applications, ACS Applied Materials & Interfaces, vol. 8, no. 5, pp. 3359-3365, 2016.
B. Kumar Gupta, Kedawat, G., Gangwar, A. Kumar, Nagpal, K., Kashyap, P. Kumar, Srivastava, S., Singh, S., Kumar, P., Suryawanshi, S. R., Seo, D. Min, Tripathi, P., More, M. A., Srivastava, O. N., Hahm, M. Gwan, and Late, D. J., High-performance field emission device utilizing vertically aligned carbon nanotubes-based pillar architectures, AIP Advances, vol. 8, no. 1, p. 015117, 2018.
B. Anothumakkool, Torris, A. A. T., Veeliyath, S., Vijayakumar, V., Badiger, M. V., and Kurungot, S., High-Performance flexible solid-state supercapacitor with an extended nanoregime interface through in situ polymer electrolyte generation, ACS Applied Materials & Interfaces, vol. 8, no. 2, pp. 1233-1241, 2016.
D. Dhakras and Ogale, S., High-performance organic-inorganic hybrid piezo-nanogenerator via interface enhancedpolarization effects for self-powered electronic systems, Advanced Materials Interfaces, vol. 3, no. 20, p. Article Number: 1600492, 2016.
M. Pawar, Kadam, S., and Late, D. J., High-Performance Sensing Behavior Using Electronic Ink of 2D SnSe2 Nanosheets., Chemistry Select, vol. 2, no. 14, 2017.
X. Peng, Kashyap, V., Ng, B., Kurungot, S., Wang, L., Varcoe, J. R., and Mustain, W. E., High-performing PGM-free AEMFC cathodes from carbon-supported cobalt ferrite nanoparticles, Catalysts, vol. 9, no. 3, p. 264, 2019.
B. A. Kakade, Allouche, H., Mahima, S., Sathe, B. R., and Pillai, V. K., High-purity synthesis of scrolled mats of multi-walled carbon nanotubes using temperature modulation, Carbon, vol. 46, no. 4, pp. 567-576, 2008.
M. Mahakur, Prabhu, A., Sharma, A. K., Rao, V. R., Senroy, S., Singh, R., and Goswami, B. N., High-resolution outgoing longwave radiation dataset from Kalpana-1 satellite during 2004-2012, Current Science, vol. 105, no. 8, pp. 1124-1133, 2013.
A. Gunnam and Nangia, A. K., High-solubility salts of the multiple sclerosis drug teriflunomide, Crystal Growth & Design, vol. 19, no. 09, pp. 5407-5417, 2019.
S. Radhakrishnan, Ramanujam, B. T. S., Adhikari, A., and Sivaram, S., High-temperature, polymer-graphite hybrid composites for bipolar plates: effect of processing conditions on electrical properties, Journal of Power Sources, vol. 163, no. 2, pp. 702-707, 2007.
V. R. Choudhary, Mondal, K. C., and Mamman, A. Singh, High-temperature stable and highly active/selective supported NiCoMgCeOx catalyst suitable for autothermal reforming of methane to syngas, Journal of Catalysis, vol. 233, no. 1, pp. 36-40, 2005.
L. Thorat, Oulkar, D., Banerjee, K., Gaikwad, S. M., and Nath, B. B., High-throughput mass spectrometry analysis revealed a role for glucosamine in potentiating recovery following desiccation stress in chironomus, Scientific Reports, vol. 7, p. Article Number: 3659, 2017.
S. A. Gharat, Shinde, B. A., Mule, R. D., Punekar, S. A., Dholakia, B. B., Jayaramaiah, R. H., Ramaswamy, G., and Giri, A. P., High-throughput metabolomic and transcriptomic analyses vet the potential route of cerpegin biosynthesis in two varieties of Ceropegia bulbosa Roxb., Planta, vol. 251, no. 1, p. 28, 2020.
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