Max Bodenstein is considered to be one of the founders of chemical kinetics. He started by detailed experimental work on the formation of hydrogen iodide. His technique was to mix hydrogen and iodine in a sealed tube, which he placed in a thermostat and held at a constant high temperature. The reaction eventually reached an
equilibrium, at which the rate of formation of hydrogen iodide was equal to the rate of decomposition to the original reaction (H2 + I2 ≡ 2HI). The equilibrium mixture of hydrogen, iodine, and hydrogen iodide was frozen by rapid cooling, and the amount of hydrogen iodide present could be analyzed. Using different amounts of initial reactants, Bodenstein could vary the amounts present at equilibrium and verify the law of chemical equilibrium proposed in 1863 by
Cato Maximilian Guldberg and
Peter Waage. His work, published in 1899, was one of the first equilibrium investigations over an extended temperature range. Bodenstein also investigated in photochemistry, being first to demonstrate that, in the reaction of hydrogen with chlorine, the high performance could explain by means of a chain reaction. Future inventor of the gas chromatograph,
Erika Cremer worked with Bodenstein at this time and wrote her dissertation on the hydrogen-chlorine chain reaction in 1927. He explored in great detail the reaction mechanism of reaction between hydrogen and chlorine. With this research, he contributed to the understanding in light-induced chemical chain reactions and thus contributed to the photochemistry. In his kinetic studies, he used the
quasi-steady state approximation to derive the
rate equation of the reaction. When an
overall reaction is subdivided into
elementary steps, Bodenstein's quasi-steady state approximation neglects the variations in the concentrations of
reaction intermediates by assuming that these will remain quasi-constant. These reactive intermediates can be radicals, carbenium ions, molecules in the excited state, etc.
Victor Henri wrote in 1902: "M. Bodenstein to whom I owe much valuable advice", in particular on the kinetic description of the invertase enzyme. Thus, Bodenstein contributed to early research in enzyme kinetics. According to Henri and a later paper by Bodenstein himself, in 1901 or 1902, he suggested the enzyme-kinetic rate law v = V S / (mS + nP). Henri corrected this into v = V S / (1 + mS + nP) (both written in modern notation; S, substrate concentration, P, product concentration). The
Bodenstein number (Bo), a dimensionless number that is often used to describe axial mixing in so-called axial-dispersion models for tubular reactors, is named after him. It represents the ratio between the convective transport to the transport by axial dispersion. ==Awards and fellowships==