| Title | Modular "Click" Chemistry for Electrochemically and Photoelectrochemically Active Molecular Interfaces to Tin Oxide Surfaces |
| Publication Type | Journal Article |
| Year of Publication | 2011 |
| Authors | Benson, MC, Ruther, RE, Gerken, JB, Rigsby, ML, Bishop, LM, Tan, Y, Stahl, SS, Hamers, RJ |
| Journal | ACS Applied Materials & Interfaces |
| Volume | 3 |
| Pagination | 3110-3119 |
| Date Published | Aug |
| Accession Number | WOS:000294146900042 |
| Keywords | catalytic water oxidation, click chemistry, Complexes, covalent attachment, efficiency, electron transfer, electron-transfer, Materials Science, metal oxide, Science & Technology - Other Topics, Sensitized solar-cells, sno2, surface, surface functionalization, thin-films, tin oxide, tio2 films, transport |
| Abstract | We demonstrate the use of "click" chemistry to form electrochemically and photoelectrochemically active molecular interfaces to SnO(2) nanoparticle thin films. By using photochemical grafting to link a short-chain alcohol to the surface followed by conversion to a surface azide group, we enable use of the Cu(I)-catalyzed azide-alkyne [3 + 2] cycloaddition (CuAAC) reaction, a form of "click" chemistry, on metal oxide surfaces. Results are shown with three model compounds to test the surface chemistry and subsequent ability to achieve electrochemical and photoelectrochemical charge transfer. Surface-tethered ferrocene groups exhibit good electron-transfer characteristics with thermal rates estimated at >1000 s(-1). Time-resolved surface photovoltage measurements using a ruthenium terpyridyl coordination compound demonstrate photoelectron charge transfer on time scales of nanoseconds or less, limited by the laser pulse width. The results demonstrate that the CuAAC "click" reaction can be used to form electrochemically and photoelectrochemically active molecular interfaces to SnO(2) and other metal oxide semiconductors. |