TY - JOUR
T1 - Unwrapping the Dodecaborane Core
T2 - Structure, Electronic Properties, and Chemical Reactivity Across the Complete [B12In]− Series (n = 11–1)
AU - Shao, Qiaoqiao
AU - Cao, Wenjin
AU - Knorke, Harald
AU - Behrend, Kay Antonio
AU - Kaur, Jaskiran
AU - Rohdenburg, Markus
AU - Volke, Daniela
AU - Kenttämaa, Hilkka I.
AU - Hu, Zhubin
AU - Sun, Zhenrong
AU - Warneke, Jonas
AU - Sun, Haitao
AU - Wang, Xue Bin
N1 - Publisher Copyright:
© 2026 The Authors. Published by American Chemical Society.
PY - 2026/6/3
Y1 - 2026/6/3
N2 - Successively stripping the exohedral substituents from the stable closo-dodecaborate anion [B12I12]2– results in structural transformations of the icosahedral B12 into a (quasi-)planar unsubstituted B12 unit. Previous studies have revealed that [B12I11]− to [B12I8]− ions contain a closed B12 unit, while [B12I7]− is the first ion in the series with an opened B12 unit. Further transitions in geometry, electronic structure, and chemical reactivity across the whole range of fragments [B12In]− (n = 11–1) remain elusive. Herein, we report a systematic investigation to explore the chemical properties of these intermediate structures by using negative ion photoelectron spectroscopy (NIPES), ion mobility spectrometry (IMS), gas-phase ion–molecule reactions, and quantum chemical calculations. [B12In]− ions can be categorized into three groups: (1) very reactive ions with intact (quasi-)icosahedral B12 cages (n = 11–8), (2) less reactive ions with open structures (n = 7–4), and (3) almost unreactive ions with (quasi-)planar structures (n = 3–1). Preparative mass spectrometry shows that ions with the unsaturated B12 core (category 2) tend to form smaller, fully substituted closo-borate anions [BmXm]2– (m = 6–11 with X = I, H, OH) on surfaces. In contrast, ions in category 3 cannot be found on the surface and apparently decay into volatile products. This research provides fundamental insights into the physical and chemical properties of B12 units depending on their substitution level and paves the way for the rational design of boron-rich compounds by using unconventional [B12In]− building blocks.
AB - Successively stripping the exohedral substituents from the stable closo-dodecaborate anion [B12I12]2– results in structural transformations of the icosahedral B12 into a (quasi-)planar unsubstituted B12 unit. Previous studies have revealed that [B12I11]− to [B12I8]− ions contain a closed B12 unit, while [B12I7]− is the first ion in the series with an opened B12 unit. Further transitions in geometry, electronic structure, and chemical reactivity across the whole range of fragments [B12In]− (n = 11–1) remain elusive. Herein, we report a systematic investigation to explore the chemical properties of these intermediate structures by using negative ion photoelectron spectroscopy (NIPES), ion mobility spectrometry (IMS), gas-phase ion–molecule reactions, and quantum chemical calculations. [B12In]− ions can be categorized into three groups: (1) very reactive ions with intact (quasi-)icosahedral B12 cages (n = 11–8), (2) less reactive ions with open structures (n = 7–4), and (3) almost unreactive ions with (quasi-)planar structures (n = 3–1). Preparative mass spectrometry shows that ions with the unsaturated B12 core (category 2) tend to form smaller, fully substituted closo-borate anions [BmXm]2– (m = 6–11 with X = I, H, OH) on surfaces. In contrast, ions in category 3 cannot be found on the surface and apparently decay into volatile products. This research provides fundamental insights into the physical and chemical properties of B12 units depending on their substitution level and paves the way for the rational design of boron-rich compounds by using unconventional [B12In]− building blocks.
UR - https://www.scopus.com/pages/publications/105041070569
U2 - 10.1021/jacs.6c04725
DO - 10.1021/jacs.6c04725
M3 - 文章
C2 - 42166755
AN - SCOPUS:105041070569
SN - 0002-7863
VL - 148
SP - 22166
EP - 22177
JO - Journal of the American Chemical Society
JF - Journal of the American Chemical Society
IS - 21
ER -