People: Jee Woo Park

Graduate Student
Publications
  1. Z. Yan, J. Park, Y. Ni, H. Loh, S. Will, M. Zwierlein, and T. Karman. Resonant dipolar collisions of ultracold molecules induced by microwave dressing. Physical Review Letters, 125(063401), August 2020.
  2. J. Park, Z. Yan, H. Loh, S. Will, and M. Zwierlein. Second-Scale Nuclear Spin Coherence Time of Trapped Ultracold 23Na40K Molecules. Science, 357(372), July 2017.
  3. S. Will, J. Park, Z. Yan, H. Loh, and M. Zwierlein. Coherent Microwave Control of Ultracold $^{23}$Na$^{40}$K Molecule. Phys. Rev. Lett. , 116(225306), June 2016.
  4. J. Park and M. Zwierlein. Two-Photon Pathway to Ultracold Fermionic Ground State Molecules of 23Na40K. New J. of Phys., 1505:01835, 2015.
  5. J. Park and M. Zwierlein. Ultracold Dipolar Gas of Fermionic Na 23 K 40 Molecules in Their Absolute Ground State. Physical Review Letters, 114:205302, 2015.
  6. J. Park, C. Wu, I. Santiago, P. Ahmadi, and M. Zwierlein. Quantum degenerate Bose-Fermi mixture of chemically different atomic species with widely tunable interactions. Phys. Rev. A, 85:051602(R), 2012.
  7. C. Wu, J. Park, P. Ahmadi, S. Will, and M. Zwierlein. Ultracold Fermionic Feshbach Molecules of $^{23}$Na$^{40}$K. Phys Rev Lett, 109:085301, 2012.
  8. C. Wu, I. Santiago, J. Park, P. Ahmadi, and M. Zwierlein. Strongly Interacting Isotopic Bose-Fermi Mixture Immersed in a Fermi Sea. Phys. Rev. A, 84:011601, 2011.
  9. C. Wu, I. Santiago, J. Park, P. Ahmadi, and M. Zwierlein. Strongly interacting isotopic Bose-Fermi mixture immersed in a Fermi sea. Phys. Rev. A., 84:011601(R), 2011.
News
Thu August 10, 2017

Ultracold molecules hold promise for quantum computing

Researchers have taken an important step toward the long-sought goal of a quantum computer, which in theory should be capable of vastly faster computations than conventional computers, for certain kinds of problems. The new work shows that collections of ultracold molecules can retain the information stored in them, for hundreds of times longer than researchers have previously achieved in these materials.