Haobin Wang Department of Chemistry and Biochemistry

Slides:



Advertisements
Similar presentations
Introduction to Computational Chemistry NSF Computational Nanotechnology and Molecular Engineering Pan-American Advanced Studies Institutes (PASI) Workshop.
Advertisements

Atkins & de Paula: Atkins’ Physical Chemistry 9e
Wave function approaches to non-adiabatic systems
Role of Coherence in Biological Energy Transfer Tomas Mancal Charles University in Prague QuEBS Lisbon Collaborators: Jan Olšina, Vytautas.
Nanostructures Research Group Center for Solid State Electronics Research Quantum corrected full-band Cellular Monte Carlo simulation of AlGaN/GaN HEMTs.
Optical Engineering for the 21st Century: Microscopic Simulation of Quantum Cascade Lasers M.F. Pereira Theory of Semiconductor Materials and Optics Materials.
A. Nitzan, Tel Aviv University ELECTRON TRANSFER AND TRANSMISSION IN MOLECULES AND MOLECULAR JUNCTIONS AEC, Grenoble, Sept 2005 Lecture 2.
Understanding Strong Field Closed Loop Learning Control Experiments PRACQSYS August 2006.
Quantum decoherence of excited states of optically active biomolecules Ross McKenzie.
Femtochemistry: A theoretical overview Mario Barbatti II – Transient spectra and excited states This lecture can be downloaded.
The spectral method: time-dependent quantum dynamics of FHF - : Potential Energy Surface, Vibrational Eigenfunctions and Infrared Spectrum. Guillermo Pérez.
Time-resolved analysis of large amplitude collective motion in metal clusters Metal clusters : close « cousins » of nuclei Time resolved : « Pump Probe.
Yinghua Wu* Xin Chen, Yinghua Wu and Victor S. Batista Department of Chemistry, Yale University, New Haven, CT Xin Chen * Current address: Department.
Femtochemistry: A theoretical overview Mario Barbatti III – Adiabatic approximation and non-adiabatic corrections This lecture.
Mr. Yinghua Wu Multidimensional Quantum Dynamics: Methods and Applications Yinghua Wu, Luis G.C. Rego and Victor S. Batista Department of Chemistry, Yale.
14. April 2003 Quantum Mechanics on the Large Scale Banff, Alberta 1 Relaxation and Decoherence in Quantum Impurity Models: From Weak to Strong Tunneling.
Femtochemistry: A theoretical overview Mario Barbatti VII – Methods in quantum dynamics This lecture can be downloaded at
Theory of vibrationally inelastic electron transport through molecular bridges Martin Čížek Charles University Prague Michael Thoss, Wolfgang Domcke Technical.
Mr. Sabas Abuabara Sabas Abuabara, Luis G.C. Rego and Victor S. Batista Department of Chemistry, Yale University, New Haven, CT Quantum Information.
Photochemistry: adiabatic and nonadiabatic molecular dynamics with multireference ab initio methods Photochemistry: adiabatic and nonadiabatic molecular.
Pump-Probe Spectroscopy Chelsey Dorow Physics 211a.
Rodolfo Jalabert CHARGE AND SPIN DIPOLE RESONANCES IN METALLIC NANOPARTICULES : collective versus single-particle excitations R. Molina (Madrid) G. Weick.
ultrafast absorption-difference at 5 K monshouwer, baltuska, van mourik & van grondelle, j. phys. chem. a 1998 photosynthetic electronic energy transfer.
Coherence and decay within Bose-Einstein condensates – beyond Bogoliubov N. Katz 1, E. Rowen 1, R. Pugatch 1, N. Bar-gill 1 and N. Davidson 1, I. Mazets.
Crystal Lattice Vibrations: Phonons
1 Quantum Theory of DNA— An Approach to Electron Transfer in DNA H. Sugawara, 2005 Work being done with H. Ikemura 1.Introduction motivation ⇔ Ikemura.
1 Femtosecond Time and Angle-Resolved Photoelectron Spectroscopy of Aqueous Solutions Toshinori Suzuki Kyoto University photoelectron.
Lecture I: The Time-dependent Schrodinger Equation  A. Mathematical and Physical Introduction  B. Four methods of solution 1. Separation of variables.
6. Second Quantization and Quantum Field Theory
System and definitions In harmonic trap (ideal): er.
Pump-Probe Photoionization & Mass Spectroscopy of Pentamethylcyclopentadiene Fedor Rudakov Peter Weber Molecular Spectroscopy June 21, 2007.
Electronic Tunneling through Dissipative Molecular Bridges Uri Peskin Department of Chemistry, Technion - Israel Institute of Technology Musa Abu-Hilu.
Quantum Monte-Carlo for Non-Markovian Dynamics Collaborator : Denis Lacroix Guillaume Hupin GANIL, Caen FRANCE  Exact  TCL2 (perturbation)  TCL4  NZ2.
1 Li Xiao and Lichang Wang Department of Chemistry & Biochemistry Southern Illinois University Carbondale The Structure Effect of Pt Clusters on the Vibrational.
Phase Space Exploration in Acetylene at Energies up to 13,000 cm -1 Jonathan Martens Badr Amyay David S. Perry U.S. Department of Energy The University.
Semiclassical model for localization and vibrational dynamics in polyatomic molecules Alexander L. Burin Quantum Coherent Properties of Spins – III Many.
1 Miyasaka Laboratory Yusuke Satoh David W. McCamant et al, Science, 2005, 310, Structural observation of the primary isomerization in vision.
Multilayer Formulation of the Multi-Configuration Time- Dependent Hartree Theory Haobin Wang Department of Chemistry and Biochemistry New Mexico State.
Vibrational Relaxation of CH 2 ClI in Cold Argon Amber Jain Sibert Group 1.
XII Nuclear Physics Workshop Maria and Pierre Curie: Nuclear Structure Physics and Low-Energy Reactions, Sept , Kazimierz Dolny, Poland Self-Consistent.
Dissipation and Coherence: Halogens in Rare Gas Solids Signatures of Dissipation in Pump-Probe Spectra Dissipation of Energy in Excited Halogens Dispersion.
Mapping Thymine Dimer Splitting in Damaged DNA by Photolyase Zheyun Liu, Chuang Tan, Jiang Li, Xunmin Guo, Lijuan Wang and Dongping Zhong Department of.
Objective: Determine a laser pulse which achieves as prescribed goal that Examples of time-dependent control targets a)the wave function follows a given.
Chemical Reaction on the Born-Oppenheimer surface and beyond ISSP Osamu Sugino FADFT WORKSHOP 26 th July.
Rotational spectra of molecules in small Helium clusters: Probing superfluidity in finite systems F. Paesani and K.B. Whaley Department of Chemistry and.
NCN nanoHUB.org Wagner The basics of quantum Monte Carlo Lucas K. Wagner Computational Nanosciences Group University of California, Berkeley In collaboration.
SIMULATION OF THE SPIN-VIBRONIC STRUCTURE IN THE GROUND ELECTRONIC STATE AND EMISSION SPECTRA INTENSITIES FOR CH 3 O RADICAL VADIM L. STAKHURSKY Radiation.
A Method to Rapidly Predict the Injection Rate in Dye Sensitized Solar Cells. Daniel R. Jones and Alessandro Troisi Department of Chemistry and Centre.
Flow of Vibrational Energy in Polyatomic Molecules: Using Acetylenic Anharmonic Couplings to Follow Vibrational Dynamics Steven T. Shipman and Brooks H.
STUDY ON THE VIBRATIONAL DYNAMICS OF PHENOL AND PHENOL-WATER COMPLEX BY PICOSECOND TIME- RESOLVED IR-UV PUMP-PROBE SPECTROSCOPY Yasunori Miyazaki, Yoshiya.
Probing fast dynamics of single molecules: non-linear spectroscopy approach Eli Barkai Department of Physics Bar-Ilan University Shikerman, Barkai PRL.
Advanced methods of molecular dynamics 1.Monte Carlo methods 2.Free energy calculations 3.Ab initio molecular dynamics 4.Quantum molecular dynamics III.
Theoretical Study on Vibronic Interactions and Photophysics of Low-lying Excited Electronic States of Polycyclic Aromatic Hydrocarbons S. Nagaprasad Reddy.
Time Domain nonadiabatic dynamics of NO 2 International Symposium on Molecular Spectroscopy 62nd Meeting June 18-22, 2007 Michaël SANREY Laboratoire de.
Calculating Potential Energy Curves With Quantum Monte Carlo Andrew D Powell, Richard Dawes Department of Chemistry, Missouri University of Science and.
Quantum Methods For Adsorption
Suman K. Pal, Patrick Z. El-Khoury, Andrey S.
How do you build a good Hamiltonian for CEID? Andrew Horsfield, Lorenzo Stella, Andrew Fisher.
Molecular Spectroscopy OSU June TRANSIENT ABSORPTION AND TIME-RESOLVED FLUORESCENCE STUDIES OF SOLVATED RUTHENIUM DI-BIPYRIDINE PSEUDO-HALIDE.
Exact factorization of the time-dependent electron- nuclear wave function: A fresh look on potential energy surfaces and Berry phases Co-workers: Ali Abedi.
Universität Karlsruhe Phys. Rev. Lett. 97, (2006)
HUI LIU, JINJUN LIU, Department of Chemistry, HEMANT M. SHAH and BRUCE W. ALPHENAAR, Department of Electrical & Computer Engineering, University of Louisville.
Introduction to Laser Spectroscopic Techniques for Condensed Matter.
CF14 EGI-XSEDE Workshop Session Tuesday, May 20 Helsinki, Findland Usecase 2 TTU-COMPCHEM Collaboration on Direct Classical and Semiclassical Dynamics.
Flat Band Nanostructures Vito Scarola
HIRG 重离子反应组 Heavy Ion Reaction Group GDR as a Probe of Alpha Cluster in Light Nuclei Wan-Bing He ( 何万兵 ) SINAP-CUSTIPEN Collaborators : Yu-Gang.
Tunable excitons in gated graphene systems
The Landau-Teller model revisited
Promotion of Tunneling via Dissipative Molecular Bridges
Combined Coherent-States/Density-Functional-Theory Dynamics ACS PRF# AC6 Jorge A. Morales Department of Chemistry and Biochemistry Texas Tech University.
Presentation transcript:

Multilayer Formulation of the Multi-Configuration Time-Dependent Hartree Theory Haobin Wang Department of Chemistry and Biochemistry New Mexico State University Las Cruces, New Mexico, USA Collaborator: Michael Thoss Support: NSF

Outline Conventional brute-force approach to wave packet propagation Multi-configuration time-dependent Hartree (MCTDH) method Multilayer formulation of MCTDH (ML-MCTDH) Quantum simulation of time correlation functions Application to ultrafast electron transfer reactions

Conventional Wave Packet Propagation Dirac-Frenkel variational principle Conventional Full CI Expansion (orthonormal basis) Equations of Motion Capability: <10 degrees of freedom (<~n10 configurations) even for separable limit

Multi-Configuration Time-Dependent Hartree Multi-configuration expansion of the wave function Variations Both expansion coefficients and configurations are time-dependent Meyer, Manthe, Cederbaum, Chem. Phys. Lett. 165 (1990) 73

MCTDH Equations of Motion Some notations

MCTDH Equations of Motion Reduced density matrices and mean-field operators The “single hole” function

Implementation of the MCTDH Full CI expansion of the single particle functions (mode grouping and adiabatic basis contraction) Only a few single particle functions are selected among the full CI space Example: 5 single particle groups, each has 1000 basis functions Conventional approach: 10005 = 1015 configurations MCTDH with 10 single particle functions per group: 10×1000×5 + 105 = 1.5×105 parameters Capability of the MCTDH theory: ~10×10 = 100 degrees of freedom

Multi-Layer Formulation of the MCTDH Theory Multi-configurational expansion of the SP functions More complex way of expressing the wave function Two-layer MCTDH Wang, Thoss, J. Chem. Phys. 119 (2003) 1289

The Multilayer MCTDH Theory ……. Wang, Thoss, J. Chem. Phys. 119 (2003) 1289

The Multilayer MCTDH Theory Wang, Thoss, J. Chem. Phys. 119 (2003) 1289

Exploring Dynamical Simplicity Using ML-MCTDH Conventional MCTDH ML-MCTDH Capability of the two-layer ML-MCTDH: ~10×10×10 = 1000 degrees of freedom Capability of the three-layer ML-MCTDH: ~10×10×10×10 = 10000 degrees of freedom

The Scaling of the ML-MCTDH Theory f: the number of degrees of freedom L: the number of layers N: the number of (contracted) basis functions n: the number of single-particle functions

The Scaling of the ML-MCTDH Theory The Spin-Boson Model Hamiltonian electronic nuclear coupling Bath spectral density

Model Scaling of the ML-MCTDH Theory

Model Scaling of the ML-MCTDH Theory

Model Scaling of the ML-MCTDH Theory

Simulating Time Correlation Functions Examples Imaginary Time Propagation and Monte Carlo Sampling

Quantum Study of Transport Processes Electron transfer at dye-semiconductor interfaces Photochemical reactions hν cis trans hν e- Charge transport through single molecule junctions Electron transfer in mixed-valence compounds in solution hν e- V

Basic Models pump probe |g> |d> |k> hν

Intervalence Electron Transfer hν hν Experiment: - Back ET in ≈ 100 – 200 fs - Coherent structure in Pump-Probe signal

Photoinduced ET in Mixed-Valence Complexes Experiment [Barbara et al., JPC A 104 (2000) 10637]: ET bimodal decay ≈ 100 fs / 2 ps Wang, Thoss, J. Phys. Chem. A 107 (2003) 2126

Validity of Different Methods Mean-field (Hartree) Classical Ehrenfest Self-consistent hybrid Golden rule (NIBA)

Vibrational Dynamics in Intervalence ET Ground state Charge-Transfer State Thoss, Wang, Domcke, Chem. Phys. 296 (2004) 217

Electron-transfer at dye-semiconductor interfaces hν e- Zimmermann, Willig, et al., J. Chem. Phys. B 105 (2001) 9345

Example: Coumarin 343 – TiO2 hν e-

ET at dye-semiconductor interfaces: Coumarin 343 - TiO2

ET at dye-semiconductor interfaces: Coumarin 343 - TiO2 Absorption spectra C343 in solution C343 adsorbed on TiO2 experiment simulation Experiment: Huber et al., Chem. Phys. 285 (2002) 39

ET at dye-semiconductor interfaces: Coumarin 343 - TiO2 |k> |g> hν population of the donor state Experiments: electron injection 20 - 200 fs Rehm, JCP 100 (1996) 9577 Murakoshi, Nanostr. Mat. 679 (1997) 221 Gosh, JPCB 102 (1998) 10208 Huber, Chem. Phys. 285 (2002) 39 Kondov, Thoss, Wang, J. Phys. Chem. A 110 (2006) 1364

ET at dye-semiconductor interfaces: Coumarin 343 - TiO2 |k> |g> hν vibrational dynamics donor state acceptor states ω = 1612 cm-1

ET at dye-semiconductor interfaces: Coumarin 343 - TiO2 |k> |g> hν vibrational dynamics donor state acceptor states ω = 133 cm-1 Vibrational motion induced by ultrafast ET

ET at dye-semiconductor interfaces Electron injection dynamics - comparison of different methods hν |d> |k> |g> population of the donor state ML-MCTDH Ehrenfest Mean-Field (Hartree)

ET at dye-semiconductor interfaces: Coumarin 343 - TiO2 Simulation of the dynamics including the coupling to the laser field photoinduced electron injection dynamics |d> |k> |g> hν acceptor population donor population laser pulse (5 fs)

ET at dye-semiconductor interfaces: Coumarin 343 - TiO2 Simulation of the dynamics including the coupling to the laser field photoinduced electron injection dynamics |d> |k> |g> hν acceptor population donor population laser pulse (20 fs)

ET at dye-semiconductor interfaces: Coumarin 343 - TiO2 Simulation of the dynamics including the coupling to the laser field photoinduced electron injection dynamics |d> |k> |g> hν acceptor population donor population laser pulse (40 fs)

ET at dye-semiconductor interfaces: Alizarin - TiO2 population of the donor state Experiment: electron injection 6 fs Huber, Moser, Grätzel, Wachtveitl, J. Phys. Chem. B 106 (2002) 6494

Summary of the ML-MCTDH Theory Powerful tool to propagate wave packet in complex systems Can reveal various dynamical information population dynamics and rate constant reduced wave packet motions time-resolved nonlinear spectroscopy dynamic/static properties: real and imaginary time Current status Has been implemented for certain potential energy functions: two-body, three-body, etc. The (time-dependent) correlation DVR of Manthe Challenges Implementation: somewhat difficult Long time dynamics: “chaos”