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Dihydrate;dihydrobromide

中文名称
——
中文别名
——
英文名称
Dihydrate;dihydrobromide
英文别名
dihydrate;dihydrobromide
Dihydrate;dihydrobromide化学式
CAS
——
化学式
Br2O2
mdl
——
分子量
191.807
InChiKey
JVXJUBFIDOXFDY-UHFFFAOYSA-N
BEILSTEIN
——
EINECS
——
  • 物化性质
  • 计算性质
  • ADMET
  • 安全信息
  • SDS
  • 制备方法与用途
  • 上下游信息
  • 反应信息
  • 文献信息
  • 表征谱图
  • 同类化合物
  • 相关功能分类
  • 相关结构分类

计算性质

  • 辛醇/水分配系数(LogP):
    -0.49
  • 重原子数:
    4.0
  • 可旋转键数:
    0.0
  • 环数:
    0.0
  • sp3杂化的碳原子比例:
    0.0
  • 拓扑面积:
    63.0
  • 氢给体数:
    0.0
  • 氢受体数:
    0.0

反应信息

  • 作为产物:
    描述:
    bromine monoxide 以 solid matrix 为溶剂, 生成 Dihydrate;dihydrobromide 、 二溴一氧化物
    参考文献:
    名称:
    Reversible Photoinitiated Isomerization Reaction of BrOBr to BrBrO:  A Combined Matrix Isolation and ab Initio Study
    摘要:
    The reversible photoinitiated isomerization reaction of BrOBr to BrBrO was measured in solid argon matrixes and calculated by multiconfigurational quasidegenerate perturbation theory (MCQDPT). The calculated vertical excitation energies are in good agreement with the experimentally observed excitation wavelengths. While the isomerization from BrOBr to BrBrO appears to be quantitative, some product loss is observed during the back reaction. The calculated excitation energies and oscillator strengths for transitions from the ground to excited states offer a detailed explanation of this behavior.
    DOI:
    10.1021/jp973082v
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文献信息

  • Reversible Photoinitiated Isomerization Reaction of BrOBr to BrBrO:  A Combined Matrix Isolation and ab Initio Study
    作者:Jennifer Kölm、Otto Schrems、Peter Beichert
    DOI:10.1021/jp973082v
    日期:1998.2.1
    The reversible photoinitiated isomerization reaction of BrOBr to BrBrO was measured in solid argon matrixes and calculated by multiconfigurational quasidegenerate perturbation theory (MCQDPT). The calculated vertical excitation energies are in good agreement with the experimentally observed excitation wavelengths. While the isomerization from BrOBr to BrBrO appears to be quantitative, some product loss is observed during the back reaction. The calculated excitation energies and oscillator strengths for transitions from the ground to excited states offer a detailed explanation of this behavior.
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