Tamás Vigassy
ETH Zurich
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Publication
Featured researches published by Tamás Vigassy.
Chemical Communications | 2003
Róbert E. Gyurcsányi; Tamás Vigassy; Ernö Pretsch
A novel biosensing principle is presented, based on the potentiometric monitoring of an indicator ion such as Ca2+, whose zero-current flux through chemically modified nanochannels is altered by biorecognition events.
Analytical Chemistry | 2009
Lajos Höfler; Iwona Bedlechowicz; Tamás Vigassy; Róbert E. Gyurcsányi; Eric Bakker; Ernö Pretsch
Ion fluxes across polymeric ion-selective membranes are a decisive parameter dictating the lower detection limit of potentiometric ion sensors. An applied current was earlier proposed to counteract such fluxes and reduce the detection limit to ultratrace levels. So far, however, the method has not been used in practical situations since the correct current amplitude requires prior knowledge of the sample composition. This paper explores the use of the stir effect to evaluate the optimal current by theory and experiments. It is shown that the traditionally used steady-state model assuming a uniform distribution of ion exchanger in the membrane, fixed with time, violates the electroneutrality condition. A modified steady-state model is introduced that allows for a concentration tilt of the ion exchanger and predicts that a stir effect can indeed be utilized to find the optimal current. Ideally, by choosing the optimal current and very long measurement times, the thermodynamic detection limit might be obtained. However, in practice the stir effect declines at low concentrations and the conditions are far from steady state. Therefore, the improvement of the lower detection limit achievable by galvanostatic control is only about 1 order of magnitude. A numerical finite-difference approximation is shown to trace the experimental potential responses of silver-selective electrodes well and to reproduce the stir effect adequately, even for different conditioning protocols. The stir effect is successfully used to improve the detection limit of electrodes with ill-optimized inner solutions; however, significant improvements beyond what is commonly feasible by chemical optimization does not seem to be easily achievable. The results indicate that with conventional membranes the possibility of improving the detection limit by current polarization is much more limited than assumed so far.
Analytical Chemistry | 2007
Reto Thürer; Tamás Vigassy; Martina Hirayama; Joseph Wang; Eric Bakker; Ernö Pretsch
Analytica Chimica Acta | 2006
Zsófia Szigeti; Adam Malon; Tamás Vigassy; Viktor Csokai; Alajos Grün; Katarzyna Wygladacz; Nan Ye; Chao Xu; Vincent J. Chebny; István Bitter; Rajendra Rathore; Eric Bakker; Ernö Pretsch
Analytica Chimica Acta | 2004
Martin Püntener; Tamás Vigassy; Ellen Baier; Alan Ceresa; Ernö Pretsch
Journal of the American Chemical Society | 2006
Adam Malon; Tamás Vigassy; Eric Bakker; Ernö Pretsch
Electroanalysis | 2006
Zsófia Szigeti; Tamás Vigassy; Eric Bakker; Ernö Pretsch
Angewandte Chemie | 2004
Andreas Zumbuehl; Damien Jeannerat; Scott E. Martin; Marc Sohrmann; Pasquale Stano; Tamás Vigassy; Daniel D. Clark; Stephen L. Hussey; Mathias Peter; Blake R. Peterson; Ernö Pretsch; Peter Walde; Erick M. Carreira
Analytical Chemistry | 2005
Tamás Vigassy; Christian G. Huber; Reiner Wintringer; Ernö Pretsch
Electroanalysis | 2003
Tamás Vigassy; Róbert E. Gyurcsányi; Ernö Pretsch