New light on the imbroglio surrounding the C8H +6 isomers formed from ionized azulene and naphthalene using ion–molecule reactions
文献信息
Corentin Rossi, Giel Muller, Sandesh Gondarry, Paul M. Mayer, Ugo Jacovella
Most polycyclic aromatic hydrocarbons (PAHs) can isomerize with internal energies near to or below the dissociation threshold. The C10H+8 group of ions, made up of the naphthalene (Naph+) and the azulene (Azu+) radical cations, is a prototypical example. C8H+6 isomers are important species in the growth kinetics and formation of complex organic molecules, and more generally fragments from larger PAHs, yet information about C8H+6 structures is scarce and contradictory. Here, ion–molecule reactions were carried out and the tunable photoionization chemical monitoring technique was used to probe the C8H+6 isomers formed upon C2H2-loss from Naph+ and Azu+. The experimental findings were interpreted with the support of ab initio and kinetics calculations. To facilitate the interpretation of these data, chemical reactivity starting from phenylacetylene (PA) was studied. It was found that most of the C8H+6 ions formed from C10H8, in a timescale of 40 μs, are PA+ in the vicinity of the dissociation threshold. No evidence of the pentalene radical cation (PE+) was observed and explanations to reconcile previous results are presented.
相关文献
A diastereo- and enantioselective synthesis of α-substituted anti-α,β-diaminophosphonic acid derivatives
Jeremy C. Wilt, Maren Pink, Jeffrey N. Johnston
DOI: 10.1039/B808393B
Detection of mismatched DNAsvia the binding affinity of MutS using a gold nanoparticle-based competitive colorimetric method
Minseon Cho, Min Su Han, Changill Ban
DOI: 10.1039/B811346G
B–H Activation by frustrated Lewis pairs: borenium or boryl phosphonium cation?
Meghan A. Dureen, A. Lough, Thomas M. Gilbert, Douglas W. Stephan
DOI: 10.1039/B808348G
Cyclometallated platinum(ii) complexes incorporating ethynyl–flavoneligands: switching between triplet and singlet emission induced by selective binding of Pb2+ ions
Pierre-Henri Lanoë, Jean-Luc Fillaut, Loïc Toupet, J. A. Gareth Williams, Hubert Le Bozec, Véronique Guerchais
DOI: 10.1039/B806935B
A facile method of achieving low surface coverage of Au nanoparticles on an indium tin oxide electrode and its application to protein detection
Md. Abdul Aziz, Srikanta Patra, Haesik Yang
DOI: 10.1039/B808026G
Weighting non-covalent forces in the molecular recognition of C60. Relevance of concave–convex complementarity
Emilio M. Pérez, Agostina L. Capodilupo, Gustavo Fernández, Luis Sánchez, Pedro M. Viruela, Rafael Viruela, Enrique Ortí, Massimo Bietti
DOI: 10.1039/B810177A
Lewis base-catalyzed conjugate reduction and reductive aldol reaction of α,β-unsaturated ketones using trichlorosilane
Masaharu Sugiura, Norimasa Sato, Shunsuke Kotani, Makoto Nakajima
DOI: 10.1039/B807529H
Facile fabrication of conducting polymer hydrogels via supramolecular self-assembly
Tingyang Dai, Xiujuan Jiang, Shouhu Hua, Xiaoshu Wang, Yun Lu
DOI: 10.1039/B807116K
Fabrication of mesoporous Pt nanotubes utilizing dual templates under a reduced pressure condition
Azusa Takai, Yusuke Yamauchi, Kazuyuki Kuroda
DOI: 10.1039/B804072A
The convenient fluorescence turn-on detection of heparin with a silole derivative featuring an ammonium group
Ming Wang, Deqing Zhang, Guanxin Zhang, Daoben Zhu
DOI: 10.1039/B808877B
您可能还喜欢
6-氯-2H-1,4-苯并噁嗪-3(4H)-酮(CAS号:7652-29-1)应用于哪些行业?
6-氯-2H-1,4-苯并噁嗪-3(4H)-酮主要应用于医药、农药和聚合物等领域。在医药领域,该化合物可用于合成抗菌药物;在农药领域,可用作杀虫剂的中间体;在聚...
活性氧化铝(CAS号:1302-74-5)应用于哪些行业?
活性氧化铝广泛应用于医药、聚合物、传感器、半导体和催化等领域。在医药行业,活性氧化铝用作吸附剂和干燥剂,有助于去除杂质和水分。在聚合物行业,它用作增白剂和抗结块...
什么是硅胶(CAS号:112926-00-8)?
硅胶(Silica gel, pptd.,cryst.-free)是一种无定形、多孔的硅酸盐材料,主要成分为二氧化硅(SiO₂)。其结构由硅氧四面体构成,通过酸...
二乙基甲基一氢硅烷(CAS号:760-32-7)的主要用途是什么?
二乙基甲基一氢硅烷主要用于有机合成、表面处理以及作为溶剂。它还被用作合成其他硅烷化合物的原料,以及在涂料、粘合剂和密封剂中的应用。
在合成中是否有N-花生四烯酰基甘氨酸(CAS号:179113-91-8)的替代品?
在合成过程中,可以考虑使用类似结构的化合物作为替代品,例如N-亚油酰基甘氨酸或N-花生二烯酰基甘氨酸。这些替代品在结构上有类似的双键位置,但可能具有不同的物理化...
在合成中是否有1-(4-甲氧基苯基)丙烷-1,2-二酮(CAS号:10557-27-4)的替代品?
在合成过程中,可以考虑使用类似结构的化合物作为替代品,例如1-(3-甲氧基苯基)丙烷-1,2-二酮或1-(4-羟基苯基)丙烷-1,2-二酮。这些替代品具有相似的...
N-(4-氨基-1-苄基-3-羟基-5-苯基戊基)-3-甲基-2-(2-氧代四氢嘧啶-1-基)-丁酰胺 5-氧代吡咯烷-2-甲酸(CAS号:192726-06-0)通常如何合成?
该化合物通常通过一系列复杂的有机合成步骤获得。首先,通过芳香族化合物的羟基化反应获得羟基化产物,然后通过酰化反应形成酰胺中间体,最后通过环化反应得到目标产物。常...
(S)-2-氨基-3-喹啉-2-丙酸(CAS号:161513-46-8)的市场或研究趋势如何?
该化合物作为生物活性化合物,尤其是在药物化学领域表现出色。近年来,随着对新型抗炎、抗病毒和抗癌药物的研究增加,其市场和研究趋势持续增长。此外,其在神经科学领域的...
核黄素磷酸钠(CAS号:130-40-5)安全吗?
核黄素磷酸钠在常规使用条件下安全,但高剂量可能引起刺激性反应。操作时需佩戴防护手套和护目镜,避免吸入粉尘。若接触皮肤或眼睛,应立即用大量清水冲洗。急救时需根据接...
盐酸丙胺卡因杂质A(EP) 标准品(CAS号:19281-31-3)通常如何合成?
盐酸丙胺卡因杂质A(EP) 标准品可通过重氮化反应和随后的酰胺化反应合成。首先,利用氯化反应将苯环上的氢原子转化为氯原子,然后通过芳香族重氮化反应引入氨基,最后...
来源期刊
Chemical Science

Our journal has a wide-ranging scope which covers the full breadth of the chemical sciences. The research we publish contains the sorts of novel ideas, challenging questions and progressive thinking that bring undiscovered breakthroughs within reach. Your paper could focus on a single area, or cross many. It could be beyond the accepted bounds of the chemical sciences. It might address an immediate challenge, contribute to a future breakthrough or be wholly conceptual. We’re a team from every field of the chemical sciences, and know from experience that breakthroughs that drive the solutions to global challenges can come from anywhere, at any time. You could even start an entirely new area of research. Too bold? Too progressive? No such thing










![2,6-Di(thiophen-2-yl)dithieno[3,2-b:2',3'-d]thiophene structure 2,6-Di(thiophen-2-yl)dithieno[3,2-b:2',3'-d]thiophene structure](https://cnstatic.chemtradehub.com/structs/910/910788-24-8-5b70.webp)



