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CMP
Credit: Jack Hobhouse

Bernard Wenger

Long Term Visitor

Sub department

  • Condensed Matter Physics
bernard.wenger@physics.ox.ac.uk
Telephone: 01865 (2) 72401
Robert Hooke Building, room G20
  • About
  • Publications

Design of Nanostructured Sol-Gel Coatings for (Bio)sensing Applications

2011 IEEE SENSORS (2011) 707-710

Authors:

E Scolan, R Steiger, R Pugin, B Schyrr, S Pasche, B Wenger, G Voirin

Integrated optical biosensor for in-line monitoring of cell cultures

Biosensors and Bioelectronics Elsevier 26:4 (2010) 1478-1485

Authors:

St茅phanie Pasche, Bernard Wenger, R茅al Ischer, Marta Giazzon, Silvia Angeloni, Guy Voirin

Mechanically tunable conjugated polymer distributed feedback lasers

Applied Physics Letters AIP Publishing 97:19 (2010) 193303

Authors:

Bernard Wenger, Nicolas T茅treault, Mark E Welland, Richard H Friend

Ultrafast charge transfer through p-oligo(phenylene) bridges: Effect of nonequilibrium vibrations

Current Science 99:3 (2010) 343-352

Authors:

C Bauer, J Teuscher, S Pelet, B Wenger, P Bonh么te', MK Nazeeruddin, SM Zakeeruddin, P Comte', M Gr盲tzel, JE Moser

Abstract:

Electron transfers (ET) between a donor (D) and an acceptor (A) through a molecular bridge (B) are of great importance in biological systems, molecular electronics and molecular based light-energy conversion systems. Here, the back and the forward electron transfer rates have been measured by femtosecond and nanosecond spectroscopy in a heterogeneous donor- bridge-acceptor (D-B-A) system, where D = ruthenium terpyridine complex, B = p-oligo(phenylene) and A = TiO2. The forward ET rate (from 0.85 to 3.7 ps-1) is faster than the nonequilibrium vibrations relaxation rate of the hot 3MLCT (metal-to-ligand charge transfer) state of the donor (12 ps-1 in solution). The back ET occurs on the microsecond time scale. Regarding the distance dependence behaviour, damping factors 0.16 and 0.47 脜-1 of the forward and the back ET respectively are obtained. These results confirm that the damping factor is not only linked to the nature of the molecular bridge but to the full D-B-A system. This unusual low damping factor observed for the forward ET is attributed to a decrease of the tunnelling energy gap 螖E, which is induced by the nonequilibrium vibrations at the donor-bridge interface. This enhanced electron transmission is briefly discussed within the concept of a nonequilibrium polaron relaxation towards the dissipative acceptor. In this case, the dissipation of the excess vibrational energy and the electron transfer occur in a synchronized cooperative way.

Inexpensive and fast wafer-scale fabrication of nanohole arrays in thin gold films for plasmonics

Nanotechnology IOP Publishing 21:20 (2010) 205301

Authors:

Mona JK Klein, Micka毛l Guillaum茅e, Bernard Wenger, L Andrea Dunbar, J眉rgen Brugger, Harry Heinzelmann, Rapha毛l Pugin

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