Photo-Dissociation Resonances of Jet-Cooled NO 2 by CW-CRDS

Similar documents
EXPERIMENTAL STUDIES OF RESONANCES IN UNIMOLECULAR DECOMPOSITION

Laser induced manipulation of atom pair interaction

CHEM6416 Theory of Molecular Spectroscopy 2013Jan Spectroscopy frequency dependence of the interaction of light with matter

Laser Dissociation of Protonated PAHs

Uncertainty in Molecular Photoionization!

spectroscopy of cold molecular ions

Modeling cold collisions Atoms Molecules

Fundamentals of Spectroscopy for Optical Remote Sensing. Course Outline 2009

Linear and nonlinear spectroscopy

Part IV. Fundamentals of Laser Spectroscopy

YbRb A Candidate for an Ultracold Paramagnetic Molecule

Resonances in Chemical Reactions : Theory and Experiment. Toshiyuki Takayanagi Saitama University Department of Chemistry

Photodissociation spectroscopy and dynamics of CH 3 O and CD 3 O

Sfb 658 Colloquium 11 May Part II. Introduction to Two-Photon-Photoemission (2PPE) Spectroscopy. Martin Wolf

Survey on Laser Spectroscopic Techniques for Condensed Matter

Laser Spectroscopy of HeH + 施宙聰 2011 AMO TALK 2011/9/26

Probing the nature of the K-rotor in unimolecular reactions: Scalar and vector correlations in the photodissociation of NCNO

X-ray Spectroscopy. Interaction of X-rays with matter XANES and EXAFS XANES analysis Pre-edge analysis EXAFS analysis

Resonances and Fluctuations in the Unimolecular Reaction of NO2

Lecture 10. Lidar Effective Cross-Section vs. Convolution

All-Optical Delay with Large Dynamic Range Using Atomic Dispersion

Coherent Nonlinear Spectroscopy: From Femtosecond Dynamics to Control

Benzene (D 6h Symmetry)

An axis-specific rotational rainbow in the direct scatter of formaldehyde from Au(111) and its influence on trapping probability

Second OH Overtone Excitation and Statistical Dissociation Dynamics of Peroxynitrous Acid

Short-pulse photoassociation in rubidium below the D 1 line

PHOTO-DISSOCIATION OF CO 2 GAS BY USING TWO LASERS

Today: general condition for threshold operation physics of atomic, vibrational, rotational gain media intro to the Lorentz model

Vibrational Autoionization in Polyatomic molecules

Probing and Driving Molecular Dynamics with Femtosecond Pulses

Quantum Chemistry. NC State University. Lecture 5. The electronic structure of molecules Absorption spectroscopy Fluorescence spectroscopy

Physics and Chemistry with Diatomic Molecules Near Absolute Zero. Tanya Zelevinsky & ZLab Columbia University, New York

Photodissociation spectroscopy and dynamics of the N 2 O 2 anion

Sodium Guidestar Return From Broad CW Sources. CfAO Fall Workshop Comments COVER SLIDE

A Dense Grid of Reference Iodine Lines for Optical Frequency Calibration in the Range nm

UV-vis (Electronic) Spectra Ch.13 Atkins, Ch.19 Engel

Lectures on Quantum Gases. Chapter 5. Feshbach resonances. Jook Walraven. Van der Waals Zeeman Institute University of Amsterdam

Saturation Absorption Spectroscopy of Rubidium Atom

Cold Controlled Chemistry. Roman Krems University of British Columbia

Vibrational Spectra of Chloroform, Freon-11 and Selected Isotopomers in the THz Frequency Region

ATOMIC AND LASER SPECTROSCOPY

Laser Detection Techniques

5.74 Introductory Quantum Mechanics II

The Positive Muon as a Probe in Chemistry. Dr. Iain McKenzie ISIS Neutron and Muon Source STFC Rutherford Appleton Laboratory

Correlation spectroscopy

Lecture 4. Feshbach resonances Ultracold molecules

Ion-Acoustic-Wave Instability from Laser-Driven Return Currents

Molecular spectroscopy

Photodissociation Dynamics of Allyl Alcohol in UV: The Exit Channel Barrier for OH Production

Damping of magnetization dynamics

As a partial differential equation, the Helmholtz equation does not lend itself easily to analytical

Supplementary Figure 1 Transient absorption (TA) spectrum pumped at 400 nm in the FAPbI3 sample with different excitation intensities and initial

Wolfgang Demtroder. Molecular Physics. Theoretical Principles and Experimental Methods WILEY- VCH. WILEY-VCH Verlag GmbH & Co.

plasma optics Amplification of light pulses: non-ionised media

SUPPLEMENTARY INFORMATION

Hyperfine structure in photoassociative spectra of 6 Li 2 and 7 Li 2

Physics and Chemistry of the Interstellar Medium

2m 2 Ze2. , where δ. ) 2 l,n is the quantum defect (of order one but larger

COPYRIGHTED MATERIAL. Index

Multi-Dimensional IR Spectroscopy of Acetic Acid Dimers and Liquid Water

AMO at FLASH. FELs provide unique opportunities and challenges for AMO physics. due to essentially three reasons:

I 2 Vapor Absorption Experiment and Determination of Bond Dissociation Energy.

MASSACHUSETTS INSTITUTE OF TECHNOLOGY Quantum Mechanics II Spring, 2004 Professor Robert W. Field. Problem Sets #8 and #9

Supplementary Materials

BY TEMPORALLY TWO-DIMENSIONAL

Mike Towrie Central Laser Facility Rutherford Appleton Laboratory. Diamond DIAMOND. Tony Parker, Pavel Matousek

Molecular spectroscopy Multispectral imaging (FAFF 020, FYST29) fall 2017

Nonadiabatic Decomposition of Gas-Phase RDX through Conical Intersections: An ONIOM-CASSCF Study

Rotational states and rotational transitions of molecules. Microwave spectroscopic methods

Microwave and optical spectroscopy in r.f. traps Application to atomic clocks

TSTC Dynamics Lectures July Ned Sibert University of Wisconsin

Richard Miles and Arthur Dogariu. Mechanical and Aerospace Engineering Princeton University, Princeton, NJ 08540, USA

Laser cooling and trapping

Thomas A. A. Oliver, Graeme A. King, Michael N. R. Ashfold

Ultrafast X-ray Spectroscopy of Solvated Transition-metal Complexes and Oxide Materials

A study of the BEC-BCS crossover region with Lithium 6

Laser Induced Fluorescence of Iodine

Isotopic effect of Cl + 2 rovibronic spectra in the A X system

SUPPLEMENTARY INFORMATION

Angle-Resolved Two-Photon Photoemission of Mott Insulator

Photon Interaction. Spectroscopy

Competitive photodissociation channels in jet-cooled HNCO: Thermochemistry and near-threshold predissociation

Experiment 6: Vibronic Absorption Spectrum of Molecular Iodine

single-molecule fluorescence resonance energy transfer

Molecular orientation via a dynamically induced pulse-train: Wave packet dynamics of NaI in a static electric field

An Introduction to XAFS

Observing the Doppler Absorption of Rubidium Using a Tunable Laser Diode System

Dynamics of fluctuations in high temperature superconductors far from equilibrium. L. Perfetti, Laboratoire des Solides Irradiés, Ecole Polytechnique

Photodissociation Dynamics

Trpzip-based beta hairpin temperature jump IR studies enhanced by sitespecific

SUPPORTING INFORMATION

The expansion coefficient of liquid helium 3 and the shape of its stability limit

Chem 442 Review of Spectroscopy

high temp ( K) Chapter 20: Atomic Spectroscopy

Photoelectron spectroscopy via the 1 1 u state of diacetylene

Absorption and Fluorescence Studies on Hyperfine Spectra of Rb and Dressed state picture

Strong Field Quantum Control. CAMOS Spring Meeting 2012 o

Wolfgang Demtroder. Laser Spectroscopy. Basic Concepts and Instrumentation. Second Enlarged Edition With 644 Figures and 91 Problems.

Lecture 20. Wind Lidar (2) Vector Wind Determination

Overtone spectroscopy of H 2 O clusters in the v OH =2 manifold: Infrared-ultraviolet vibrationally mediated dissociation studies

Transcription:

Photo-Dissociation Resonances of Jet-Cooled NO 2 by CW-CRDS Patrick DUPRÉ Laboratoire de Physico-Chimie de l Atmosphère, Université du Littoral, Côte d Opale Dunkerque, France ISMS 22-26 June 2015 Patrick DUPRÉ (LPCA/ULCO) Resonances in NO 2 at D 0 ISMS 2015 1 / 28

Outline 1 Introduction 2 RRKM Microcanonical Predictions 3 Experimental Setup 4 Jet-Cooled NO 2 at the Dissociation Threshold by CRDS 5 Spectroscopy Background 6 Analysis of the Transitions 7 Analysis of the Resonances 8 Summary/Conclusions Patrick DUPRÉ (LPCA/ULCO) Resonances in NO 2 at D 0 ISMS 2015 2 / 28

Motivations Molecular Dissociation remains Controverted; nevertheless, there are Fascinating Chemical Physics Processes E.g. Roaming observed in H 2 CO, NO 3, CH 3 CHO (photodissociation/bimodal vibrational distribution) Location of the Transition States (TS) along a barrierless reaction path? Benchmark the different variants of the RRKM (Rice Ramsperger Kassel Marcus) formalisms Patrick DUPRÉ (LPCA/ULCO) Resonances in NO 2 at D 0 ISMS 2015 4 / 28

About NO 2 NO 2 : a simple molecule exhibiting a conical interaction above 10000 cm 1 The jet-cooled LIF spectrum of NO 2 exhibits a well identified dissociation threshold, NO 2 NO ( X 2 Π 1/2, v = 0 ) + O( 3 P 2 ): Abrupt Disappearance of the Fluorescence around 398 nm, PHOFEX (Jet-Cooled) Photofragments up to D 0 +1000 cm 1 Unimolecular Dissociation Rate up to D 0 +1000 cm 1 Photodissociation Resonances up to D 0 +20 cm 1 Character of the TS: Loose or Tight? Patrick DUPRÉ (LPCA/ULCO) Resonances in NO 2 at D 0 ISMS 2015 5 / 28

Comparison with other Experiments New Spectrum CW-CRDS (Absorption-based) Obtained under CW Jet-Cooled Slit Expansion Nanosecond Experiments Pulsed Laser Source Pulsed Jet Expansion (Pin-Hole) PHOFEX (NO or O?), Depletion, TC-LIGS Spectral or Time resolved Data Comparison Residual Doppler Broadening improved by a factor 5 ( 130MHz, HWHM) Pure Absorption (no fragment analysis) Patrick DUPRÉ (LPCA/ULCO) Resonances in NO 2 at D 0 ISMS 2015 6 / 28

RRKM Microcanonical Predictions Statistical Reaction Rate Coefficient (assumption: energy conservation): ( ( k uni E ) = N E ) h ρ (E ) N ( E ) : Number of Levels at the TS For Barrierless Reaction, the coordinate of the TS (R ) should match a large Interfragment Distance (loose states), ρ ( E ) : Density of Reactant Levels, Variant RRKM Theories: Variational RRKM: Energy and Angular Momentum Conservation, SACM (Statistical Adiabatic Channel Model), Phase Space Theory (PST), etc... Patrick DUPRÉ (LPCA/ULCO) Resonances in NO 2 at D 0 ISMS 2015 8 / 28

Experimental Setup Patrick DUPRÉ (LPCA/ULCO) Resonances in NO2 at D0 ISMS 2015 10 / 28

LIF versus CRDS of Jet-Cooled NO 2 around D 0 Absorbance (ppm/pass.) τ e ~ 30 µs Slit: 45 µm x 7 mm 100 50 Seeding: 0.01 % of NO 2 in He at 1.5 bar 0 0 25125 25126 25127 25128 25129 Excitation Energy (cm 1 ) Dissociation Threshold 6 4 2 Time Integrated LIF (a.u.)

Spectroscopy Background In J-scheme of coupling: F = J +I, J = N +S (near symmetric top) H = H rot + H sr + H FC + H SI J N F 1 F F 3/2 F 1/2 F 1/2 F + 1/2 F + 1 F + 1/2 F + 3/2 with: F 3/2 H SI : N = 0, ±1, ±2; J = 0, ±1; K = 0, ±2 H FC : N = 0; J = 0, ±1; K = 0 F 1/2 F = I = S = 0 N K H N K = ( 1) K N K H N K H rot = AN 2 a +B N2 b +C N2 c F 1/2 Modified WangTransformation F + 1/2 Diagonalization = a ± S I F τ k H sr = 1 (N ɛs +S ɛn) 2 H FC = a FC I S H SI = g S g I µ B µ N [ I S r 3 afc + T (2) 0 (r ) T (2) 0 (r ) T (2) ±2 (r ) T (2) ( ±2 (r ) ) T (0) 0 (r ) = 0 FermiContact+Spin-Electronic Spin-Nuclear DipoleInteraction (Orthorhombic) 3(I ] r)(s r) r 5 = I T(r) S I = 1 S = 1/2

Fine/Hyperfine Coupling: Pairs [ q R 0 (0), q P 2 (0)] N = 1 J = 3/2 + J = 1/2 2 B 2 F 5/2 3/2 1/2 1/2 3/2 R0 P2 Q21(1/2) R11(1/2) P11(5/2) Q12(3/2) P22(3/2) N = 2 N = 0 2 A 1 2.532 cm 1 J = 3/2 + J = 5/2 + J = 1/2 2.535 cm 1 2.531 cm 1 1/2 3/2 5/2 7/2 5/2 3/2 3/2 1/2 F 221 MHz

Analysis of the Transitions CW-CRDS of Jet-Cooled NO 2 at D 0 2 10-4 Absorption (/cm) 1 10-4 Dissociation Threshold 25121 25122 25123 25124 25125 25126 25127 25128 25129 25130 Excitation Energy (cm 1 )

Summary of the Transition Analysis Comparison with previous LIF experiments (Jet-Cooled/Pinhole, Observation Slit): Temperature slightly higher, Experimental resolution slightly worst Full Simulation of the Transition (STEPRAM) Transition Shape: q R 0 (0) versus q P 0 (2), etc... In the range D 0 2.53 cm 1 D 0 : only q R 0 (0) transitions are observed 49 pairs identified between 25120.8 and 25128.4 cm 1 Hyperfine Structures in the Upper Level are weak (the Fermi-Contact term in the state à is negligible) Upper Level Fine Structure? Two times more levels J = 3/2 than J = 1/2 (1:2 ratio amplitude) Patrick DUPRÉ (LPCA/ULCO) Resonances in NO 2 at D 0 ISMS 2015 18 / 28

Analysis of the Resonances 2 10-4 Absorption (/cm) 1 10-4 5 10-5 Γ = 0.0529 (10) cm 1 25126 25127 25128 25129 25130 Excitation Wavenumber (cm 1 )

Resonance Analysis 2 10-5 Absorption (/cm) 2 10-5 2 10-5 1 10-5 25135 25140 25145 Excitation Energy (cm 1 )

Resonance Width Analysis Linewidth (HWHM) (cm 1 ) 0.1 0.01 10 100 Dissociation Time (ps) 25125 25130 25135 25140 25145 Excitation Wavenumber (cm 1 )

Spectral Analysis Hyperfine Structure ignored (J assumed) Resonances and Transitions can be distinguished without ambiguity A few ( hot ) Resonances below D 0 : One clearly Isolated ( 50ps) Around 115 individual Resonances fitted Large Resonance Width Fluctuations (2 orders of magnitude) Resonance Overlapping: from weak to strong Continuum Background? Pairing of only a few Resonances Stepwise at D 0 + 5.01cm 1 i.e., D 0 +3B NO (J NO = 1/2 to J NO = 3/2), in agreement with PST (channel at D 0 +8B NO?) Qualitative Comparison with ab initio calculations/sacm (scattering matrix) Comparison with PHOFEX Data: 2 times more Resonances, and Narrower Resonances are observed Comparison with Time Resolved Experiments: a lack of spectral resolution

Uni-molecular Dissociation Rates Weighting: Uniform Standard error Resonance Strength k uni σ kuni k uni σ kuni k uni σ kuni n dof E < D 0 + 5.01cm 1 0.025 0.038 0.010 0.064 0.016 0.0066 12.5 D 0 + 5.01cm 1 E < D 0 + 13.57cm 1 0.061 0.033 0.031 0.021 0.054 0.027 8.3 Values in ps 1 k uni1/2 0.016ps 1 ( 61 ps)comparedwithk uni3/2 0.054ps 1 ( 18 ps), 3 overlapping regimes (ρ res Γ 1)? Feshbach Theory of Resonance scattering, Analysis of σ kuni : Number of Degrees of Freedom (n dof from 12.5 to 8.3), Comparison with PHOFEX (spectral resolution/temperature): Broader Resonance Width Distribution, and Density of Resonances 3 Times Larger, but very close value of k uni Patrick DUPRÉ (LPCA/ULCO) Resonances in NO 2 at D 0 ISMS 2015 24 / 28

Densities at Dissociation ρ reac 11.2 levels/cm 1 (weighting according to the relative number of J values) ρ res 9.5/cm 1 (PHOFEX: ρ peak 3.4/cm 1 ) LIF: ρ trans = 16.6/cm 1 : ρ vib = 5.8 ±0.24 levels/cm 1 has been deduced ρ res (9.5/cm 1 ) ρ trans (16.6/cm 1 ): absence of failure in the density of vibronic levels at D 0? ρ vib = 5.8 ±0.24 levels/cm 1 : high compared with the extrapolation by Dunham expansions < 1 levels/cm 1 Resonances versus Roaming States? Interpretation: Floppy Frame of the Molecule associated with Large Bond? Scrambling? Rovibronic coupling? In agreement with the Loose TS? Patrick DUPRÉ (LPCA/ULCO) Resonances in NO 2 at D 0 ISMS 2015 25 / 28

Summary/Conclusions The frequency Range D 0 2.53cm 1 D 0 Transition versus Resonance Pairing (R 0, P 2 ) Hyperfine Structures (Upper versus Lower Levels) Large Quantal Dispersion of the Resonance Width (1:100) Dissociation Channel Openings (at least 2 are observed) Compatibility with Phase Space Theory: k uni1/2 0.016 ps 1 ( 61 ps) compared with k uni3/2 0.054 ps 1 ( 18 ps) Loosely Bound TS Roaming? Reconciling Spectral and Time Resolved Experiments: from Loose to Tight TS? The High Resolution of the CW-CRDS only helps below D 0 +15cm 1 Perspectives Cooler Radicals Analysis of the Product Distribution (CW) Ab initio Calculations (PESs) Isotopologues Cold Femtosecond Pump-Probe Experiments?

Thanks Thank for your Attention Ref: J. Chem. Phys. 142, 174305 (2015) Patrick DUPRÉ (LPCA/ULCO) Resonances in NO 2 at D 0 ISMS 2015 28 / 28