Google scholar link:
https://scholar.google.co.in/citations?hl=en&user=7HoVBcAAAAAJ&view_op=list_works&sortby=pubdate
Book Chapters
Chapters published after joining BITS Goa
2) Chapter 12: Microsupercapacitors for Miniaturized Electronic Device Applications (2023)
1) Chapter 12: Photo- and Electrochemical Generation of Hydrogen Peroxide for Advanced Oxidation Processes (2022)
Raikar,L. G.; Paniya, S.; Prakash, H.; Subramanian, G.; Kiran, V.* Photo- and Electrochemical Water Treatment: For the Removal of Contaminants of Emerging Concern by RSC, ISBN: 978-1-83916-501-6. (DOI: 10.1039/9781839167355-00317)
Publications
Publications after joining BITS Goa
28) Tungsten Oxide-Based Z-Scheme for Visible Light-Driven Hydrogen Production from Water Splitting
Thangamuthu, M.;# Kiran V.;# Xiong, L.; Conroy, S.; Zhang, X.; Tang, J. ACS Catal., 2023, 13, 9113. (#equal contribution) 27) Palladium-Nanoparticle-Decorated Covalent Organic Framework Nanosheets for Effective Hydrogen Gas Sensors
Krishnaveni,V.; DMello,M. E.; Sahoo,P.; Thokala, N.; Bakuru, V. R.; Kiran V.; Basavaiah, K.; Kalidindi, S. B. ACS Appl. Nano Mater., 2023, DOI:10.1021/acsanm.3c01806 26)
Exfoliated Redox Active Imide Covalent-Organic Framework for Metal Free Hydrogen Gas SensingThokala, N.; Kiran V.;, Gaonkar, A. D.; Periyasamy, G.; Fazl-UrRahman, K.; Valle, K.; DMello, M. E.; Basavaiah, K.; Kalidindi, S. B. Sens. Diagn., 2023, (In Press)
25) Optothermal and electrical properties of ultrathin alloys of mixed dichalcogenides
Jenjeti, R. N.; Kumar, R.; Kiran V.;* Sampath, S.* J. Mater. Sci., 2022 DOI: 10.1007/s10853-022-07309-2
24) Solution-Processing of Topochemically Converted Layered WO3 for Multifunctional Applications
Sahoo, P.; Gupta, B.; Sahoo, R. C.; Kiran V.; Matte, H. S. S. R, Chem. Eur. J. 2021, 27, 11326.
23) Key factors affecting photoelectrochemical performance of g-C3N4polymer films
Ruan, Q.; Bayazit, M. K.; Kiran, V.; Xie, J.; Wang, Y.; Tang, J. Chem. Comm. 2019, 55, 7191.
Publications prior to BITS Goa
22) Bacteriorhodopsin based non-magnetic spin filters for biomolecular spintronics
Varade, V.; Markus, T.; Kiran, V.; Friedman, N.; Sheves, M.; Waldeck, D. H.; Naaman, R. Phys. Chem. Chem. Phys. 2018, 20, 1091.
21) Magnetless device for conducting three-dimensional spin-specific electrochemistry
Kumar, A.; Capua, E.; Kiran, V.; Fontanesi, C.; Naaman, R. Angew. Chem. Int. Ed.,2017, 129, 14779.
20) Enhanced hydrogen production with chiral conductive polymer-based electrode
Tassinari, F.; Ghosh, K. B.; Parenti, F.; Kiran, V.; Mucci, A. Naaman, R. J. Phys. Chem. C 2017, 121, 15777.
19) Control of electrons’ spin eliminates hydrogen peroxide formation during water splitting
Mtangi, W.; Tassinari, F.; Kiran, V.; Jentzsch, A. V.; Adelizzi, B.; Palmans, A. R. A.; Fontanesi, C.; Meijer, E. W.; Naaman, R. J. Am. Chem. Soc. 2017, 139, 2794.
18) Structure dependent spin selectivity in electron transfer through oligopeptides
Kiran, V.; Cohen, S. R.; Naaman, R. J. Chem. Phys. 2017, 146, 092302.
17) Magnetization switching in ferromagnets by adsorbed chiral molecules without current or external magnetic field
Dor, O. B.; Yochelis, S.; Radko, A.; Kiran, V.; Capua, E.; Capua, A.; Yang, S.-H.; Baczewski, L. T.; Parkin, S. S. P.; Naaman, R.; Paltiel, Y. Nat. Commun. 2017, 8, 14567.
16) Spin selective charge transport through cysteine capped CdSe quantum dots
Bloom, B.P.; Kiran, V.;* Varade, V.; Naaman, R.; Waldeck, D. H. “ Nano Lett. 2016, 16, 4583. (* equal contribution with first author)
15) Helicenes - A new class of organic spin filter
Kiran,V.; Mathew, S. P.; Cohen, S. R.; Delgado, I.H.; Lacour, J.; Naaman, R. Adv. Mater. 2016, 28,1957.
14) Role of the electron spin polarization in water splitting
Mtangi, W.; Kiran, V.; Fontanesi, C.: Naaman, R. J. Phys. Chem. Lett. 2015, 6, 4916.
13) Redox-active metal–organic frameworks: Highly stable charge-separated states through strut/guest-to-strut electron transfer
Sikdar, N.; Jayaramulu, K.; Kiran,V.; Rao, K. V.; Sampath,S.; George,S. J.; Maji,T. K. Chem. Eur. J. 2015, 21, 11701.
12) Evidence for enhanced electron transfer by multiple contacts between self-assembled organic monolayers and semiconductor nanoparticles
Kantor-Uriel,N.; Roy,P.; Saris, S.; Kiran,V.; Waldeck,D. H.; Naaman, R. J. Phys. Chem. C 2015, 119, 15839.
11) A new “ONE-STEP” thiol functionalization procedure for Ni by self-assembled monolayers
Fontanesi, C.; Tassinari, F.; Parenti, F.; Cohen,H.; Mondal, P. C.; Kiran, V.; Giglia, A.; Pasquali, L.; Naaman, R. Langmuir 2015, 31, 3546.
10) Spin filtering in electron transport through chiral oligopeptides
Kettner, M.; Göhler, B.; Zacharias, H.; Mishra, D.; Kiran, V.; Naaman, R.; Fontanesi, C.; Waldeck, D. H.; Sek, S.; Pawlowski, J.; Juhaniewicz, J. J. Phys. Chem. C 2015, 119, 14542.
9) Active guests in MoS2 / MoSe2 host lattice: Efficient hydrogen evolution using few-layer alloys of MoS2(1-x)Se2x
Kiran, V.; Mukherjee, D.; Naidu, R. J.; Sampath, S. Nanoscale 2014, 6, 12856.
8) Few-layer borocarbonitride nanosheets: Platinum-free catalyst for the oxygen reduction reaction
Moses, K.; Kiran, V.; Sampath, S.; Rao, C. N. R. Chemistry–An Asian J. 2014, 9, 838.
7) Synergistic electrochemical activity of titanium carbide and carbon towards fuel cell reactions
Kiran, V.; Nagashree, K. L.; Sampath, S. RSC Adv. 2014, 4, 12057.
6) Facile synthesis of carbon doped TiO2 nanowires without external carbon source and its opto-electronic properties Kiran, V.; Sampath, S. Nanoscale 2013, 5, 10656.
5) Morphology dependent oxygen reduction activity of titanium carbide: Bulk vs. Nanowires
Kiran, V.; Srinivasu, K.; Sampath, S. Phys. Chem. Chem. Phys. 2013, 15, 8744.
4) Enhanced raman spectroscopy of molecules adsorbed on carbon-doped TiO2 obtained from titanium carbide: A visible-light assisted renewable substrate
Kiran, V.; Sampath, S. ACS Appl. Mater. Interfaces 2012, 4, 3818.
3) Electrochemical oxidation of boron containing compounds on titanium carbide and its implications to direct fuel cells
Kiran V.; Kalidindi, S. B.; Jagirdar, B. R.; Sampath, S. Electrochim. Acta 2011, 56, 10493.
2) Electro-oxidation of borohydride on rhodium, iridium, and rhodium–iridium bimetallic nanoparticles with implications to direct borohydride fuel cells
Kiran V.; Ravikumar, T.; Kalyanasundaram, N. T.; Krishnamurty, S.; Shukla, A.K.; Sampath, S. J. Electrochem. Soc. 2010, 157, B1201.
1) A short review on direct borohydride fuel cells
Kiran, V.; Sampath, S. J. Ind. Inst. Sci. 2009, 89, 447.