2019
DOI: 10.1039/c9cp03764k
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Halide anion discrimination by a tripodal hydroxylamine ligand in gas and condensed phases

Abstract: The binding of halide anions with a tripodal hydroxylamine ligand studied in gas (mass spectrometry and DFT methods) and condensed phases revealed notable agreement.

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Cited by 1 publication
(2 citation statements)
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References 74 publications
(79 reference statements)
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“…9 H 3 TriNOx presents three accessible hydroxyl moieties as potential H-bonding sites. 10 The strategy was to use electrospray ionization (ESI) to generate gas-phase complexes comprising TcO 4 À and/or ReO 4 À coordinated by H 3 TriNOx. It was anticipated that relative abundances of different complexes would reveal differences in efficacy of anion coordination by the ligand, and that collision induced dissociation (CID)…”
mentioning
confidence: 99%
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“…9 H 3 TriNOx presents three accessible hydroxyl moieties as potential H-bonding sites. 10 The strategy was to use electrospray ionization (ESI) to generate gas-phase complexes comprising TcO 4 À and/or ReO 4 À coordinated by H 3 TriNOx. It was anticipated that relative abundances of different complexes would reveal differences in efficacy of anion coordination by the ligand, and that collision induced dissociation (CID)…”
mentioning
confidence: 99%
“…The structures here contrast with those previously reported for analogous species comprised of H 3 TriNOx and halide anions. 10 The complex [L(HClBr)] À , for example, is not a (Cl À )(H + )(Br À ) proton bound dimer coordinated by H 3 TriNOx. Instead, it is essentially a protonated H 4 TriNOx + coordinated by well-separated halide anions, Cl À and Br À .…”
mentioning
confidence: 99%