10-methyl-9,10-dihydroacridine in acetonitrile
T=49.9°C; AcH2 as an acid stable NADH model: the effect of HClO4 and Mg(ClO4)2 on the rate constant of the hydride transfer reaction is measured; Rate constant;
10-methyl-9,10-dihydroacridine in acetonitrile
T=24.9°C; AcH2 as an acid stable NADH model: the effect of HClO4 and Mg(ClO4)2 on the rate constant of the hydride transfer reaction is measured; Rate constant;
10-methyl-9,10-dihydroacridine in acetonitrile
T=24.9°C; AcH2 as an acid stable NADH model: the effect of HClO4 and Mg(ClO4)2 on the rate constant of the hydride transfer reaction is measured; Rate constant;
10-methyl-9,10-dihydroacridine in acetonitrile
T=24.9°C; AcH2 as an acid stable NADH model: the effect of HClO4 and Mg(ClO4)2 on the rate constant of the hydride transfer reaction is measured; Rate constant;
10-methyl-9,10-dihydroacridine in acetonitrile
T=24.9°C; AcH2 as an acid stable NADH model: the effect of HClO4 and Mg(ClO4)2 on the rate constant of the hydride transfer reaction is measured; Rate constant;
10-methyl-9,10-dihydroacridine in acetonitrile
T=24.9°C; AcH2 as an acid stable NADH model: the effect of HClO4 and Mg(ClO4)2 on the rate constant of the hydride transfer reaction is measured; Rate constant;
10-methyl-9,10-dihydroacridine in acetonitrile
T=24.9°C; AcH2 as an acid stable NADH model: the effect of HClO4 and Mg(ClO4)2 on the rate constant of the hydride transfer reaction is measured; Rate constant;
10-methyl-9,10-dihydroacridine in acetonitrile
T=24.9°C; AcH2 as an acid stable NADH model: the effect of HClO4 and Mg(ClO4)2 on the rate constant of the hydride transfer reaction is measured; Rate constant;