Novel method examines the gas-liquid interface in new detail

Novel molecular beam scattering apparatus that uses a liquid flat jet can study chemical reactions at the gas liquid interface of volatile liquids

28-Jul-2022 - USA

The interface between gases and liquids is found throughout nature. It is also important to many industrial processes. To improve understanding of the gas-liquid interface, researchers have developed an apparatus to study reactions between gas molecules and highly volatile liquids with new levels of detail. It uses a molecular beam that is directed onto a flat liquid surface. When the beam scatters, a detector collects data on the speed, direction, and mass of molecules in the scattered beam. This allows researchers to deduce the changes related to the interaction of gas and liquid. To evaluate the feasibility of this novel approach, the researchers studied the interaction between the noble gas neon and liquid dodecane.

Image courtesy of Chin Lee, University of California at Berkeley

Left: a liquid dodecane flat jet produced by a microfluidic chip nozzle. Right: an incident molecular beam (red line) striking the jet surface. Researchers can analyze the velocity and angular distributions of molecules in the scattered beam (blue line).

The Impact

The interface between the gas and liquid phase is a unique chemical environment. It is important to understand chemical reactions in the Earth’s atmosphere and how carbon moves between the air and the surface of the sea. In industrial settings, this interface affects how air and fuel mix in internal combustion engines and other applications. The novel flat jet scattering apparatus opens new opportunities for gas‑liquid interface studies of volatile liquids. Scientists can now study reactions of molecules on the liquid water surface with molecular-level resolution. The researchers plan to use this method to study the formation of acid rain and molecules related to air pollution.

Summary

This research reports the first results of a newly designed flat jet scattering apparatus. The researchers, including scientists from the University of California, Berkeley; Lawrence Berkeley National Laboratory; the Fritz Haber Institute of the Max Planck Society; the Leibniz Institute of Surface Engineering; and the University of Leipzig, demonstrated the feasibility of the apparatus by studying the neon‑liquid dodecane scattering system. They started by measuring molecular evaporation from a neon‑doped dodecane flat jet. The research found that evaporation follows an angular distribution that is best approximated by a cosine function for both neon and dodecane molecules. Also, the velocity distribution of the outgoing neon molecules follows a Maxwell‑Boltzmann distribution at the liquid temperature. This indicates unperturbed evaporation of neon. The researchers therefore used neon atoms to probe the scattering dynamics at the liquid dodecane surface.

In the scattering experiments, the team observed two main mechanisms: impulsive scattering (IS) and thermal desorption (TD). In TD, molecules impinging on the surface fully thermalize with the liquid and subsequently desorb. This mechanism has a fingerprint already known from the evaporation studies. For IS, however, information about the initial beam energy and direction is partially conserved. The research exploited this condition to quantify the translational energy transfer from neon to the liquid. They showed that the nature of the energy transfer can be modeled with a soft‑sphere kinematic model. This model enabled them to estimate the effective surface mass of dodecane to be 60 amu, which is much smaller than a single dodecane molecule (170 amu), thereby indicating that only part of a dodecane molecule contributes to the interaction at the collision timescale. The team’s next steps include conducting experiments related to protic/aprotic molecular scattering off dodecane and reactive scattering from water.

Funding:
This work is funded by the Department of Energy (DOE) Office of Science, Basic Energy Science (BES) Program, Chemical Sciences, Geosciences, and Biosciences Division. This research used the resources of the SLAC National Accelerator Laboratory, also supported by the DOE Office of Science, BES Program. The Alexander von Humboldt Foundation and the German Research Foundation provided additional support.

Original publication

Other news from the department science

Most read news

More news from our other portals

Last viewed contents

Opening the cavity floodgates - Biochemists investigate the transport of large proteins through bacterial cell membranes

Opening the cavity floodgates - Biochemists investigate the transport of large proteins through bacterial cell membranes

Watermelon genome decoded - Decoded genome paves way for better watermelons

BIO White Paper Dispels Over-Patenting Myth - Patenting is a Critical Element in Fostering Research and Development

Dow acquires Rohm and Haas, creating world's leading specialty chemicals and advanced materials company - $18.8 billion transaction marks pivotal point in Dow's transformation

Cells stop dividing when this gene kicks into high gear

Cells stop dividing when this gene kicks into high gear

Targeted test for antibiotic resistance in clinical Enterobacter species - New discovery enables targeted antibiotic therapy

Targeted test for antibiotic resistance in clinical Enterobacter species - New discovery enables targeted antibiotic therapy

Varian, Inc. Announces Unique Probe Technology Breakthrough for Biological Solids NMR

Breakthrough Discovery Sheds Light on Heart and Muscle Health - Scientists shoot first true-to-life 3D image of the thick filament of mammalian heart muscle

Breakthrough Discovery Sheds Light on Heart and Muscle Health - Scientists shoot first true-to-life 3D image of the thick filament of mammalian heart muscle

Diagnosis just a breath away with new laser

MIT nanotubes sniff out cancer agents in living cells - Chemical engineers use carbon nanotubes to monitor chemotherapy, detect toxins at the single-molecule level

Fishing for DNA to measure biodiversity - Identifying the fish species present in a river based on traces of their DNA: this method has been successfully tested at about 90 sites in Switzerland

Fishing for DNA to measure biodiversity - Identifying the fish species present in a river based on traces of their DNA: this method has been successfully tested at about 90 sites in Switzerland

BioTek Receives European Patent for Microplate Washer Technology