Publications

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2009
Zeng, L, Geist W, Ruan WY, Umrigar CJ, Chou MY.  2009.  Path to Wigner localization in circular quantum dots, Jun. Physical Review B. 79:5., Number 23 AbstractWebsite

Accurate multideterminant ground-state energies of circular quantum dots containing N <= 13 electrons as a function of interaction strength have been evaluated by the diffusion quantum Monte Carlo method. Two unique features are found for these confined two-dimensional systems: (1) as the electron density decreases, the quantum dots favor states with zero orbital angular momentum (L = 0); and (2) for some values of N, the ground state cannot be fully spin-polarized because of a symmetry constraint.

2004
Upton, MH, Wei CM, Chou MY, Miller T, Chiang TC.  2004.  Thermal stability and electronic structure of atomically uniform Pb films on Si(111), Jul. Physical Review Letters. 93:4., Number 2 AbstractWebsite

Atomically uniform Pb films are successfully prepared on Si(111), despite a large lattice mismatch. Angle-resolved photoemission measurements of the electronic structure show layer-resolved quantum well states which can be correlated with dramatic variations in thermal stability. The odd film thicknesses N=5, 7, and 9 monolayers show sharp quantum well states. The even film thicknesses N=6 and 8 do not, but are much more stable than the odd film thicknesses. This correlation is discussed in terms of a total energy calculation and Friedel-like oscillations in properties.

1998
Lee, E, Puzder A, Chou MY, Uzer T, Farrelly D.  1998.  Pair-tunneling states in semiconductor quantum dots: Ground-state behavior in a magnetic field, May. Physical Review B. 57:12281-12284., Number 19 AbstractWebsite

Using classical mechanical and quantum Monte Carlo methods we trace the ground-state behavior with an applied magnetic field of localized electron pair states in a quantum dot. By developing a method to treat nonconserved paramagnetic interactions using variational and diffusion quantum Monte Carlo techniques we find (i) a single-triplet transition at very small magnetic field strengths, (ii) enhanced localization of the two electrons with increasing magnetic field, and (iii) a mechanism for pair breakup that is different from that proposed recently by Wan et al. [Phys. Rev. Lett. 75, 2879 (1995)]. [S0163-1829(98)04016-8].