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- W2894719146 abstract "Immediately after ultracold polar KRb molecules were produced in the rovibrational ground state, as well as in the lowest hyperfine state, it became clear that chemical reactions were responsible for the loss of molecules confined in a conventional far-off-resonance optical dipole trap (Ni et al., Nature 464:1324–1328, 2010; Ospelkaus et al., Science 327(5967):853–857, 2010), as the reaction 2KRb → K2 + Rb2 is exothermic. For understanding the nature of the dipolar collisions between molecules in the quantum regime, it is imperative to have a thorough understanding of the molecular states involved and the resulting quantum statistics of the colliding molecules. In this chapter I will describe the experiments that led up to the beginning of my PhD research, which is discussed in the next chapter. These discussions can also be found in our book chapter in “Low energy and low temperature molecular scattering” (Covey et al., Controlling a quantum gas of polar molecules in an optical lattice. Royal Society of Chemistry book chapter: “Low temperature and low energy molecular scattering,” 2017)." @default.
- W2894719146 created "2018-10-12" @default.
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- W2894719146 date "2018-01-01" @default.
- W2894719146 modified "2023-09-27" @default.
- W2894719146 title "Quantum-State Controlled Chemical Reactions and Dipolar Collisions" @default.
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- W2894719146 doi "https://doi.org/10.1007/978-3-319-98107-9_3" @default.
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