potassium-bromide and malonic-acid

potassium-bromide has been researched along with malonic-acid* in 2 studies

Other Studies

2 other study(ies) available for potassium-bromide and malonic-acid

ArticleYear
Pulse-coupled BZ oscillators with unequal coupling strengths.
    Physical chemistry chemical physics : PCCP, 2015, Feb-14, Volume: 17, Issue:6

    Coupled chemical oscillators are usually studied with symmetric coupling, either between identical oscillators or between oscillators whose frequencies differ. Asymmetric connectivity is important in neuroscience, where synaptic strength inequality in neural networks commonly occurs. While the properties of the individual oscillators in some coupled chemical systems may be readily changed, enforcing inequality between the connection strengths in a reciprocal coupling is more challenging. We recently demonstrated a novel way of coupling chemical oscillators, which allows for manipulation of individual connection strengths. Here we study two identical, pulse-coupled Belousov-Zhabotinsky (BZ) oscillators with unequal connection strengths. When the pulse perturbations contain KBr (inhibitor), this system exhibits simple out-of-phase and complex oscillations, oscillatory-suppressed states as well as temporally periodic patterns (N : M) in which the two oscillators exhibit different numbers of peaks per cycle. The N : M patterns emerge due to the long-term effect of the inhibitory pulse-perturbations, a feature that has not been considered in earlier works. Time delay was previously shown to have a profound effect on the system's behaviour when pulse coupling was inhibitory and the coupling strengths were equal. When the coupling is asymmetric, however, delay produces no qualitative change in behaviour, though the 1 : 2 temporal pattern becomes more robust. Asymmetry in instantaneous excitatory coupling via AgNO3 injection produces a previously unseen temporal pattern (1 : N patterns starting with a double peak) with time delay and high [AgNO3]. Numerical simulations of the behaviour agree well with theoretical predictions in asymmetrical pulse-coupled systems.

    Topics: Bromates; Bromides; Malonates; Models, Neurological; Nerve Net; Periodicity; Phenanthrolines; Potassium Compounds; Silver Nitrate; Sodium Compounds; Sulfuric Acids; Synapses

2015
Propagation of photosensitive chemical waves on the circular routes.
    The journal of physical chemistry. A, 2005, Jun-09, Volume: 109, Issue:22

    The propagation of chemical waves in the photosensitive Belousov-Zhabotinsky (BZ) reaction was investigated using an excitable field in the shape of a circular ring or figure "8" that was drawn by computer software and then projected on a film soaked with BZ solution using a liquid-crystal projector. For a chemical wave in a circular reaction field, the shape of the chemical wave was investigated depending on the ratio of the inner and outer radii. When two chemical waves were generated on a field shaped like a figure "8" (one chemical wave in each circle) as the initial condition, the location of the collision of the waves either was constant or alternated depending on the degree of overlap of the two circular rings. These experimental results were analyzed on the basis of a geometrical discussion and theoretically reproduced on the basis of a reaction-diffusion system using a modified Oregonator model. These results suggest that the photosensitive BZ reaction may be useful for creating spatio-temporal patterns depending on the geometric arrangement of excitable fields.

    Topics: 2,2'-Dipyridyl; Bromates; Bromides; Computer Simulation; Coordination Complexes; Light; Malonates; Models, Chemical; Photochemistry; Potassium Compounds; Sodium Compounds; Sulfuric Acids; Temperature; Time Factors

2005