Utilizing a focused laser beam manipulated through computer-controlled mirrors, and capable of “writing” spatiotemporal temperature fields on a surface, we explore here the fundamental impact of localized spatiotemporal perturbations on a simple reaction–diffusion system. Our two-dimensional model system is the low-pressure catalytic oxidation of CO on Pt(110), a reaction exhibiting well-understood spatiotemporal patterns. In the simplest case the laser spot causes the ignition of a reaction wave by a single critical “kick” at a selected surface location. The cooperativeness between two local subcritical perturbations separated in time and/or space is then explored. A temperature heterogeneity moving along a line may ignite waves along its ...
We study computationally and experimentally the propagation of chemical pulses in complex geometries...
The formation of target patterns in oscillatory CO oxidation on Pt(110) is studied using laser-induc...
We have modified surface catalytic activity in real time and space by focusing an addressable laser ...
Utilizing a focused laser beam manipulated through computer-controlled mirrors, and capable of “writ...
This thesis investigates the effects localized spatiotemporal perturbations have on a simple reactio...
This thesis investigates the effects localized spatiotemporal perturbations have on a simple reactio...
We study the initiation of pulses and fronts in a two-dimensional catalytic reaction–diffusion syste...
Control of spatiotemporal chaos is achieved in the catalytic oxidation of CO on Pt(110) by localized...
A novel spatiotemporal perturbation method for nonlinear surface reactions is reported, thus allowin...
The formation of target patterns in oscillatory CO oxidation on Pt(110) is studied using the control...
Using a recently realized "addressable catalyst surface" [Science 294, 134 (2001)] we study the inte...
Chemical turbulence in the oscillatory catalytic CO oxidation on Pt(110) is suppressed by means of f...
The effect of local periodic forcing on uniformly oscillating CO oxidation on a Pt(110) surface is i...
We study computationally and experimentally the propagation of chemical pulses in complex geometries...
The formation of target patterns in oscillatory CO oxidation on Pt(110) is studied using laser-induc...
We have modified surface catalytic activity in real time and space by focusing an addressable laser ...
Utilizing a focused laser beam manipulated through computer-controlled mirrors, and capable of “writ...
This thesis investigates the effects localized spatiotemporal perturbations have on a simple reactio...
This thesis investigates the effects localized spatiotemporal perturbations have on a simple reactio...
We study the initiation of pulses and fronts in a two-dimensional catalytic reaction–diffusion syste...
Control of spatiotemporal chaos is achieved in the catalytic oxidation of CO on Pt(110) by localized...
A novel spatiotemporal perturbation method for nonlinear surface reactions is reported, thus allowin...
The formation of target patterns in oscillatory CO oxidation on Pt(110) is studied using the control...
Using a recently realized "addressable catalyst surface" [Science 294, 134 (2001)] we study the inte...
Chemical turbulence in the oscillatory catalytic CO oxidation on Pt(110) is suppressed by means of f...
The effect of local periodic forcing on uniformly oscillating CO oxidation on a Pt(110) surface is i...
We study computationally and experimentally the propagation of chemical pulses in complex geometries...
The formation of target patterns in oscillatory CO oxidation on Pt(110) is studied using laser-induc...
We have modified surface catalytic activity in real time and space by focusing an addressable laser ...