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Yusuf Hamied Department of Chemistry

 

Professor of Theoretical Chemistry

The work of our group is primarily focused on the electron correlation problem - namely how to compute the correlation energy for an atom, molecule, or even solid, starting from a mean-field (say Hartree-Fock) description of the system. Our approach is to combine quantum chemical ideas with stochastic (Monte Carlo) techniques, which enable us to tackle problems which are very difficult to solve use standard quantum chemical techniques alone.

We are developing Quantum Monte Carlo algorithms adapted for electronic (and more generally Fermionic) problems by working in Slater determinant spaces. The central problem which is encountered is the infamous "Fermion sign problem", which results from electronic wavefunctions having both positive and negative amplitudes. Currently we are working on a novel population dynamics algorithm which propagates walkers in Slater determinant space according to a type of "stochastic cellular automaton" obeying simple rules. The movie on the home page of our research group website shows an evolving population of walkers of positive and negative sign settling on the FCI wavefunction of a nitrogen dimer in a minimal basis - an archetypal multireference system. The remarkable aspect of this dynamics is the spontaneous symmetry breaking caused by annhilation processes, allowing the exact nodal surface of the nitrogen molecule, as expressed by the CI coefficients, molecule to appear. No fixed-node approximation is applied.

Further animations of this method in action can be viewed here.

Publications

Theory and practice: Bulk synthesis of C3B and its H2- and Li-storage capacity
TC King, PD Matthews, H Glass, JA Cormack, JP Holgado, M Leskes, JM Griffin, OA Scherman, PD Barker, CP Grey, SE Dutton, RM Lambert, G Tustin, A Alavi, DS Wright
– Angewandte Chemie - International Edition
(2015)
54,
5919
Insights into the structure of many-electron wave functions of Mott-insulating antiferromagnets: The three-band Hubbard model in full configuration interaction quantum Monte Carlo
LR Schwarz, GH Booth, A Alavi
– Physical Review B
(2015)
91,
045139
Accurate Ab initio calculation of ionization potentials of the first-row transition metals with the configuration-interaction quantum Monte Carlo technique.
RE Thomas, GH Booth, A Alavi
– Physical review letters
(2015)
114,
033001
Unbiased reduced density matrices and electronic properties from full configuration interaction quantum Monte Carlo
C Overy, GH Booth, NS Blunt, JJ Shepherd, D Cleland, A Alavi
– J Chem Phys
(2014)
141,
244117
Unbiased reduced density matrices and electronic properties from full configuration interaction quantum Monte Carlo
C Overy, GH Booth, NS Blunt, JJ Shepherd, D Cleland, A Alavi
– Journal of Chemical Physics
(2014)
141,
Symmetry Breaking and Broken Ergodicity in Full Configuration Interaction Quantum Monte Carlo.
RE Thomas, C Overy, GH Booth, A Alavi
– Journal of chemical theory and computation
(2014)
10,
1915
Linear-scaling and parallelisable algorithms for stochastic quantum chemistry
GH Booth, SD Smart, A Alavi
– Molecular Physics
(2014)
112,
1855
Linear-scaling and parallelisable algorithms for stochastic quantum chemistry
GH Booth, SD Smart, A Alavi
– Molecular Physics
(2014)
112,
1855
A single-source route to bulk samples of C3N and the co-evolution of graphitic carbon microspheres
TC King, PD Matthews, JP Holgado, DA Jefferson, RM Lambert, A Alavi, DS Wright
– Carbon
(2013)
64,
6
Explicitly correlated plane waves: accelerating convergence in periodic wavefunction expansions.
A Grüneis, JJ Shepherd, A Alavi, DP Tew, GH Booth
– The Journal of Chemical Physics
(2013)
139,
084112
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Research Group

Research Interest Group

Telephone number

01223 762877

Email address

asa10@cam.ac.uk