Quantum Monte Carlo Simulation of Vibrational Frequency Shifts in Pure and Doped Solid para-Hydrogen Lecheng Wang, Robert J. Le Roy and Pierre- Nicholas.

Slides:



Advertisements
Similar presentations
Molecular Modeling of Structure and Dynamics in Fuel Cell Membranes A. Roudgar, Sudha N.P. and M.H. Eikerling Department of Chemistry, Simon Fraser University,
Advertisements

Quantum translation-rotation dynamics of hydrogen molecules confined in the cages of clathrate hydrates Zlatko Bacic High-dimensional quantum dynamics.
NABIL F. FARUK, HUI LI, JING YANG, ROBERT J. LE ROY & PIERRE-NICHOLAS ROY Simulation Studies of the Vibrational Dynamics of para- Hydrogen Clusters 1.
Dynamics of Vibrational Excitation in the C 60 - Single Molecule Transistor Aniruddha Chakraborty Department of Inorganic and Physical Chemistry Indian.
1 60th International Symposium on Molecular Spectroscopy, Talk RG04, 23 June 2005, Ohio State University, Columbus, OH Approved for Public Release; Distribution.
1 Nonequilibrium Green’s Function Approach to Thermal Transport in Nanostructures Jian-Sheng Wang National University of Singapore.
Statistical Models of Solvation Eva Zurek Chemistry Final Presentation.
Melting Points of Aluminum at Geological Pressures Linzey Bachmeier Divesh Bhatt Ilja Siepmann Chemistry Department University of Minnesota.
Estimates of vapor pressure for the LJ system below the triple point Barbara N. Hale Physics Department Missouri University of Science & Technology Rolla,
ABSTRACT INTRODUCTION CONCLUSIONS PATTERN FORMATION OF FUNCTIONALIZED FULLERENES ON GOLD SURFACES: ATOMISTIC AND MODEL CALCULATIONS Greg Bubnis, Sean Cleary.
Computer Simulations, Nucleation Rate Predictions and Scaling Barbara Hale Physics Department and Cloud and Aerosol Sciences Laboratory, University of.
1 Cluster Monte Carlo Algorithms & softening of first-order transition by disorder TIAN Liang.
Lattice regularized diffusion Monte Carlo
Overview of Simulations of Quantum Systems Croucher ASI, Hong Kong, December Roberto Car, Princeton University.
Thermal properties from first principles with the use of the Free Energy Surface concept Dr inż. Paweł Scharoch Institute of Physics, Wroclaw University.
Lattice QCD 2007Near Light Cone QCD Near Light Cone QCD On The Lattice H.J. Pirner, D. Grünewald E.-M. Ilgenfritz, E. Prokhvatilov Partially funded by.
Monte Carlo Methods: Basics
Monte-Carlo simulations of the structure of complex liquids with various interaction potentials Alja ž Godec Advisers: prof. dr. Janko Jamnik and doc.
Monte Carlo Simulation of Interacting Electron Models by a New Determinant Approach Mucheng Zhang (Under the direction of Robert W. Robinson and Heinz-Bernd.
1 60th International Symposium on Molecular Spectroscopy, Talk RG03, 23 June 2005, Ohio State University, Columbus, OH Approved for Public Release; Distribution.
Effective Potential Approach to the Simulation of Large Para-hydrogen Clusters and Droplets Jing Yang, Christopher Ing, and Pierre-Nicholas Roy University.
Adiabatic-hindered-rotor treatment of parahydrogen-water complex Tao Zeng, Hui Li, Robert J. Le Roy, and Pierre-Nicholas, Roy Department of Chemistry,
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.
Theoretical Study of Photodissociation dynamics of Hydroxylbenzoic Acid Yi-Lun Sun and Wei-Ping Hu* Department of Chemistry and Biochemistry, National.
Conformational Analysis of R-(+)-3-Methylcyclopentanone by IR Spectroscopy in Para-Hydrogen Crystal Watheq Al-Basheer 1,2, Shin Y. Toh 2, Jun Miyazaki.
A Kinetic Monte Carlo Study Of Ordering in a Binary Alloy Group 3: Tim Drews (ChE) Dan Finkenstadt (Physics) Xuemin Gu (MSE) CSE 373/MatSE 385/Physics.
Critical Scaling of Jammed Systems Ning Xu Department of Physics, University of Science and Technology of China CAS Key Laboratory of Soft Matter Chemistry.
Basics of molecular dynamics. Equations of motion for MD simulations The classical MD simulations boil down to numerically integrating Newton’s equations.
1- Introduction, overview 2- Hamiltonian of a diatomic molecule 3- Molecular symmetries; Hund’s cases 4- Molecular spectroscopy 5- Photoassociation of.
INFRARED-ACTIVE VIBRON BANDS ASSOCIATED WITH RARE GAS SUBSTITUTIONAL IMPURITIES IN SOLID HYDROGEN PAUL L. RASTON and DAVID T. ANDERSON, Department of Chemistry,
Phase diagram calculation based on cluster expansion and Monte Carlo methods Wei LI 05/07/2007.
Atomic scale understandings on hydrogen behavior in Li 2 O - toward a multi-scale modeling - Satoru Tanaka, Takuji Oda and Yasuhisa Oya The University.
Mixture Models, Monte Carlo, Bayesian Updating and Dynamic Models Mike West Computing Science and Statistics, Vol. 24, pp , 1993.
8. Selected Applications. Applications of Monte Carlo Method Structural and thermodynamic properties of matter [gas, liquid, solid, polymers, (bio)-macro-
Surface and Bulk Fluctuations of the Lennard-Jones Clusrers D. I. Zhukhovitskii.
Stochastic Thermodynamics in Mesoscopic Chemical Oscillation Systems
1 M.Sc. Project of Hanif Bayat Movahed The Phase Transitions of Semiflexible Hard Sphere Chain Liquids Supervisor: Prof. Don Sullivan.
Quantum Monte Carlo simulations of helium clusters doped with molecular and ionic impurities Stefano Paolini CNR-INFM-Democritos National Simulation Center.
Using computer modelling to help design materials for optical applications Robert A Jackson Chemical & Forensic Sciences School of Physical & Geographical.
Rotational spectra of molecules in small Helium clusters: Probing superfluidity in finite systems F. Paesani and K.B. Whaley Department of Chemistry and.
Path integral Monte Carlo
APS -- March Meeting 2011 Graphene nanoelectronics from ab initio theory Jesse Maassen, Wei Ji and Hong Guo Department of Physics, McGill University, Montreal,
The MD simulation shows that in the case of PBN, reorientation of the AN molecule to reach the optimal geometry of the CT-AQ state is not likely to be.
Meta-stable Sites in Amorphous Carbon Generated by Rapid Quenching of Liquid Diamond Seung-Hyeob Lee, Seung-Cheol Lee, Kwang-Ryeol Lee, Kyu-Hwan Lee, and.
1 61st International Symposium on Molecular Spectroscopy, Talk RI03, 22 June 2006, Ohio State University, Columbus, OH Approved for Public Release; Distribution.
Mike Lindsay * and Roger Miller University of North Carolina at Chapel Hill OSU International Symposium on Molecular Spectroscopy, TI02, 6/22/2006 * Current.
ROTATIONAL SPECTROSCOPY OF CO SOLVATED WITH PARA-H 2 MOLECULES Paul Raston and Wolfgang Jäger Department of Chemistry, University of Alberta, Edmonton,
Thomas Halverson and Bill Poirier Texas Tech University Department of Physics
Experimental Measurements of Collisional Cross Sections and Rates at Astrophysical and Quantum Collisional Temperatures Frank C. De Lucia Department of.
High Resolution Microwave Spectra of He N – and (H 2 ) N – Linear Molecule Clusters Wolfgang Jäger Department of Chemistry, University of Alberta, Edmonton,
Graphene-metal interface: an efficient spin and momentum filter
Tao Peng and Robert J. Le Roy
1 61 st International Symposium on Molecular Spectroscopy, Talk RD10, 22 June 2006, The Ohio State University, Columbus, OH Approved for Public Release;
An Analytic 3-Dimensional Potential Energy Surface for CO 2 -He and Its Predicted Infrared Spectrum Hui Li, Robert J. Le Roy υ International Symposium.
Composition of the Earth’s core from ab-initio calculation of chemical potentials Department of Earth Sciences & Department of Physics and Astronomy, Thomas.
The Cl+H 2  HCl+H reaction induced by IR+UV irradiation of Cl 2 in solid parahydrogen Sharon C. Kettwich and David T. Anderson Department of Chemistry,
C 60 - Single Molecule Transistor Aniruddha Chakraborty Indian Institute of Technology Mandi, Mandi , Himachal Pradesh, India.
A New Potential Energy Surface for N 2 O-He, and PIMC Simulations Probing Infrared Spectra and Superfluidity How precise need the PES and simulations be?
Spectroscopy of (He) N -Molecule Clusters: Tracing the Onset of Superfluidity Yunjie Xu and Wolfgang Jäger Department of Chemistry, University of Alberta,
Infrared Spectroscopic Studies of OCS Trapped in Solid Parahydrogen: Indirect Evidence of Large Amplitude Motions Morgan E. Balabanoff and David T. Anderson.
Predictive Modeling and Simulation of Charge Mobility in 2D Material Based Devices Altaf Karim Department of Physics, COMSATS Institute of Information.
RADIATION EFFECTS OF COPPER SINGLE CRYSTALS UNDER STRESS
Jamming at High Densities
Efficient Sampling of Quantum Systems Using Path Integral Molecular Dynamics: Application to Weakly Bound Systems r θ Christopher Ing, Konrad Hinsen*,
International Symposium on Molecular Spectroscopy
Carbon Nanotube Diode Design
Quantum Dynamics of Hydrogen Molecules Inside Cages of Clathrate Hydrates Zlatko Bacic, Department of Chemistry, New York University, New York, NY
Hot Cold Molecules: Collisions at Astrophysical Temperatures
Electronic spectroscopy of DCF
Presentation transcript:

Quantum Monte Carlo Simulation of Vibrational Frequency Shifts in Pure and Doped Solid para-Hydrogen Lecheng Wang, Robert J. Le Roy and Pierre- Nicholas Roy Chemistry Department, University of Waterloo Waterloo, Ontario, Canada Page1

Open Questions for Pure Solid pH 2 H. P. Gush and co-workers, Can. J. Phys 176, 38 (1960), Isaas F. Silverra, Rev. Mod. Phys. 393, 52(1980) T. Oka, Annu. Rev. Phys. Chem. 299, 44(1993) G. Tejeda and co-workers, Phys. Rev. Lett , 92(2004) Theoretical insights of vibrational frequency shift of pH 2 in solid pH 2 are still unclear. observed in pH 2 clusters and solid Page2 schematic diagram of

H. Li and co-workers, J. Chem. Phys. 139, (2013) M. E. Fajardo, J. Phys. Chem. A 117, (2013) Open Questions for CO Doped Solid pH 2 Theoretical investigation of of CO in doped solid pH2 is still left undetermined. of CO in pH 2 clusters of CO isotopes in pH 2 solid: fcc structure: cm -1 hcp structure: cm -1 Page3 fcc crystalhcp crystal A B A C A B B A A

Part I - Pure Solid pH 2 -Methodologies Algorithms:  Path Integral Monte-Carlo (PIMC)  Periodic Boundary Conditions  First order perturbation theory Simulate at temperature: T = 4.2 K Isaas F. Silverra, Rev. Mod. Phys. 393, 52, (1980) N. Blinov and co-workers, J. Phys. Chem. A, 120, 5916, (2004) M. Boninsegni and co-workers, Phys. Rev. Lett. 96, , (2006) R. J. Hinde, J. Chem. Phys., 128, , (2008) H. Li and co-workers, J. Chem. Phys.,130, , (2009) N. Faruk and co-workers, (under revision) pH 2 ‐ pH 2 potential: recently obtained 1D potential averaged from Hinde’s 6D H 2 ‐ H 2 potential. Page4

Part I - Pure Solid pH 2 -Methodologies Fittings of numbers of beads P: N. Blinov and co-workers, J. Phys. Chem. A, 120, 5916, (2004) M. Boninsegni and co-workers, Phys. Rev. Lett. 96, , (2006) Our choice: P = 64 compared with: extrapolated values ( ) Energy discrepancy: 6.4% discrepancy: 1.5% Extrapolation of E obtained with 144 atoms in hcp cell Page5

Part I - Pure Solid pH 2 - Structures R: distance between nearest neighbors in solid. In periodic boundary conditions: R is determined by the size of the cell. Isaas F. Silverra, Rev. Mod. Phys. 393, 52(1980) E varies as a function of R (144 pH 2 in hcp cell) Observed R of hcp pH 2 solid: Å Calculated R of both hcp and fcc pH 2 solid: Å Page6

Part I - Pure Solid pH 2 - N: Number of atoms inside one cell in periodic boundary conditions. H. P. Gush and co-workers, Can. J. Phys 176, 38 (1960), varies linearly with 1/N: PIMC (left) and classical MC (right)(fcc) First-order perturbation theory Page7

Part I - Pure Solid pH 2 - and Densities H. P. Gush and co-workers, Can. J. Phys 176, 38 (1960) Isaas F. Silverra, Rev. Mod. Phys. 393, 52(1980) Energy (left) and (right) varies as a function of density (hcp) Observed densities for 0 pressure hcp crystal: Å -3 Observed for 0 pressure hcp crystal: cm -1 Calculated with 144 atoms in the cell Page8

Part I - Pure Solid pH 2 - Summaries H. P. Gush and co-workers, Can. J. Phys 176, 38 (1960) Isaas F. Silverra, Rev. Mod. Phys. 393, 52(1980) hcp experimental hcp calculated fcc calculated (Å) with 144 atoms in cell with 108 atoms in cell (cm -1 ) by extrapolate by extrapolate (Å -3 ) with 144 atoms in cell with 108 atoms in cell Page9 fcc cell hcp cell

Part II – CO Doped Solid pH 2 - Methodology H. Li, P.-N. Roy, and R. J. Le Roy, J. Chem. Phys. 133, (2010) H. Li and co-workers, J. Chem. Phys.,139, , (2013) M. E. Fajardo, J. Phys. Chem. A 117, (2013) pH 2 ‐ pH 2 potential: same as the study of pure solid pH 2. pH 2 ‐ CO potential: obtained from Hui Li’s 4D H 2 ‐ CO potential using Adiabatic Hindered Rotor approximation. Algorithms:  Path Integral Monte-Carlo (PIMC)  First order perturbation theory Simulate at temperature: T = 2.4 K Number of beads in PIMC: Page10

Part II – CO Doped Solid pH 2 - Methodology jiggling lattices in a rigid frame P. Tao, thesis for master degree of science, University of Waterloo(2005) pH 2 : Green ones: hold fixed pH 2 : Blue ones: relaxing CO: located in the center, translating and rotating R all pH 2 with R < R relax is relaxing, and similar treatment when choosing the total number of pH 2 in the model. Page11 R relax

Part II – CO Doped Solid pH 2 - Structures Studies of substitution site: N remove =0: pure pH 2 N remove =1: single substitution N remove =1: double substitution Obtained by fcc structure N relax = 42 N fix = 822 Page12 Classical MC PIMC Single substitution is most stable.

Part II – CO Doped Solid pH 2 - Structures minimal energy structure of single substitution in solid fcc pH 2 icosahedral pH 2 cage in (pH 2 ) 12 ‐ CO cluster S. Baroni and S. Moroni, Chem. Phys. Chem. 6, 1884 (2005) Page13

Part II – CO Doped Solid pH 2 - convergence studies of the number of relaxing pH 2 (left) and the total number of pH 2 (right) in fcc pH 2 matrix using of CO N relax = 54, N total = 1260: good approximation for pH 2 matrix. N relax is corresponding to R relax = 7.56 Å ≈ R H2-H2 + R H2-CO Page14

Part II – CO Doped Solid pH 2 - cm -1 experimental calculated-3.244(1)-3.251(1)-0.007(2) M. E. Fajardo, J. Phys. Chem. A 117, (2013) of CO in solid pH2 of different structure Page15

Part II – CO Doped Solid pH 2 - PIMC vs MC Page16 distribution of pH 2 around CO PIMC Classical MC Centre of mass of CO R θ pH2pH2 CO

Conclusion  Observed structures, densities and of both fcc and hcp pH 2 crystal have been satisfyingly reproduced.  Single substitution site is most stable for CO doped pH 2 matrix.  The obtained different values of in fcc and hcp pH 2 matrix, and the difference agree with observations very well.  Quantum mechanical treatment is critical to simulate pH 2 matrix. Page17

Future works  Scaling pH 2 ‐ pH 2 potential to provide a more realistic solvation environment for doped CO in pH 2 matrix.  Incorporating Worm Algorithm to handle the Bose Exchange, thus to predict the rotational dynamics of doped CO in pH 2 matrix.  Scaling pH 2 ‐ CO potential to different isotopes of CO to study isotope effect of. Page18

Page19 Acknowledgement Supervisors: Prof. Robert J. Le Roy Prof. Pierre-Nicholas Roy Prof. Marcel Nooijen Prof. Hui Li Dr. Tao Zeng Nabil Faruk Matthew Schmidt Theoretical Chemistry Group, University of Waterloo $$: NSERC and CFI Canada Thank You !