The goal of LACRIDO is to capture and analyze reactive intermediates from fast reactions by freezing them through Joule-Thomson expansion in a molecular jet. Using chirped-pulse microwave spectroscopy, we precisely determine their three-dimensional (3D) structures, enabling comprehensive identification of species involved in reaction mechanisms. This is achieved using the “Chirped Pulse And Resonator In one Spectrometer” (PARIS), an advanced instrument uniquely designed for high-sensitivity and high-resolution pure rotational spectroscopy.
PARIS is the first and only spectrometer worldwide that integrates a pulsed-jet resonator-type spectrometer (narrowband) and a chirped-pulse Fourier transform microwave spectrometer (broadband) with design allowing for interchangeable operation without turnaround time. Both share electronic components in a dual-purpose configuration while utilizing identical vacuum parts, offering rapid broadband capabilities alongside unmatched resolving power and sensitivity.
Stage 1 of LACRIDO has been successfully completed, with following main technical and scientific achievements:
1) Technical achievements in infrastructure and equipment development include:
• Acquisition of the tunable pulsed laser NT342E-OPO (Ekspla) with deep UV-extension and additional harmonic outputs with high power.
• Redesign of laboratory space, installation of laser protection, and redesign of the PARIS spectrometer to enhance sensitivity and resolution as well as making it compatible with the newly purchased UV laser. This achievement has resulted in a performance level ahead of any other instrument worldwide, making a significant milestone toward the project goal of capturing reactive intermediates from laser-initiated bimolecular reactions produced in trace concentrations.
• Installation, setup, and testing of the laser system, which is now ready to be coupled and synchronized with PARIS.
2) Scientific achievements include:
• Study of acrolein dimer: We investigated the product of the acrolein Diels-Alder self-reaction, 3,4-dihydro-2H-pyran-2-carboxaldehyde, commonly known as the acrolein dimer. Quantum chemical calculations, combined with chirped-pulse and resonator-enhanced microwave spectroscopy, identified two conformers. Their 3D structures were determined through the detection of their 13C and 18O isotopologues, the latter present at only 0.2% natural abundance.
• Measurements and spectroscopic characterization of a large number of astrophysical and atmospherically relevant molecules, such as isoprene, methylnitrophenols, lutidines, dimethylfluorobenzenes, dimethylanisoles, as well as thiophene, pyrrole, and 1-propene derivatives. In parallel, computational codes were developed to address diverse quantum chemical effects observed in the experimental spectra.
• Advances in ethylene-ozone studies: Building on prior research (J. Z. Gillies et al., J. Am. Chem. Soc. 110, (1988) 7991), we used the PARIS spectrometer and quantum chemistry to study the ethylene primary ozonide and the ozone-ethylene complex, with ozone generated in situ using an ozone generator.
These achievements represent essential groundwork for the subsequent Stage 2 of LACRIDO, particularly the integration of laser activation with the PARIS spectrometer and the study of more complex reactive intermediates.