2011
DOI: 10.1063/1.3653232
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Solvation effects on angular distributions in H−(NH3)n and NH2−(NH3)n photodetachment: Role of solute electronic structure

Abstract: We report 355 and 532 nm photoelectron imaging results for H(-)(NH(3))(n) and NH(2)(-)(NH(3))(n), n = 0-5. The photoelectron spectra are consistent with the electrostatic picture of a charged solute (H(-) or NH(2)(-)) solvated by n ammonia molecules. For a given number of solvent molecules, the NH(2)(-) core anion is stabilized more strongly than H(-), yet the photoelectron angular distributions for solvated H(-) deviate more strongly from the unsolvated limit than those for solvated NH(2)(-). Hence, we conclu… Show more

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Cited by 13 publications
(19 citation statements)
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“…47 The model prediction compares favorably with the experimental data; however, it is not too different from the prediction of the unmodified (f = 1) WBCZ model (grey curve in Figure 3(b)). …”
Section: B Solvated Nh 2 − : Perturbed P State Photodetachmentmentioning
confidence: 67%
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“…47 The model prediction compares favorably with the experimental data; however, it is not too different from the prediction of the unmodified (f = 1) WBCZ model (grey curve in Figure 3(b)). …”
Section: B Solvated Nh 2 − : Perturbed P State Photodetachmentmentioning
confidence: 67%
“…The H − and NH 2 − anions, respectively, solvated by ammonia, are excellent trial systems for this model. In the accompanying paper, 47 we reported our recent experimental results for the H − (NH 3 ) n and NH 2 − (NH 3 ) n cluster anions. Here, we use the formalism developed in Sec.…”
Section: Comparison To Experimentsmentioning
confidence: 99%
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“…[1][2][3][4][5][6][7][8][9][10] In addition to measuring traditional photoelectron spectra, the imaging experiment also provides an extra set of information, the photoelectron angular distributions (PADs). The PAD carries information about the parent ion orbital from which the electron is detached.…”
mentioning
confidence: 99%