Synthesis, Electronic Properties and Reactivity of [B12 X11 (NO2 )]2- (X=F-I) Dianions.
Knut R AsmisBjörn B BeeleCarsten JenneSebastian KawaHarald KnorkeMarc C NierstenhöferXue-Bin WangJonas WarnekeZiyan WarnekeQinqin YuanPublished in: Chemistry (Weinheim an der Bergstrasse, Germany) (2020)
Nitro-functionalized undecahalogenated closo-dodecaborates [B12 X11 (NO2 )]2- were synthesized in high purities and characterized by NMR, IR, and Raman spectroscopy, single crystal X-diffraction, mass spectrometry, and gas-phase ion vibrational spectroscopy. The NO2 substituent leads to an enhanced electronic and electrochemical stability compared to the parent perhalogenated [B12 X12 ]2- (X=F-I) dianions evidenced by photoelectron spectroscopy, cyclic voltammetry, and quantum-chemical calculations. The stabilizing effect decreases from X=F to X=I. Thermogravimetric measurements of the salts indicate the loss of the nitric oxide radical (NO. ). The homolytic NO. elimination from the dianion under very soft collisional excitation in gas-phase ion experiments results in the formation of the radical [B12 X11 O]2-. . Theoretical investigations suggest that the loss of NO. proceeds via the rearrangement product [B12 X11 (ONO)]2- . The O-bonded nitrosooxy structure is thermodynamically more stable than the N-bonded nitro structure and its formation by radical recombination of [B12 X11 O]2-. and NO. is demonstrated.
Keyphrases
- raman spectroscopy
- high resolution
- solid state
- nitric oxide
- mass spectrometry
- density functional theory
- molecular dynamics
- energy transfer
- single molecule
- molecular dynamics simulations
- ionic liquid
- magnetic resonance
- molecularly imprinted
- liquid chromatography
- gold nanoparticles
- dna damage
- dna repair
- high performance liquid chromatography
- oxidative stress
- simultaneous determination