Malone Ryan J, Chalifoux Wesley A
University of Alberta, Department of Chemistry, 11227 Saskatchewan Dr NW, Edmonton, AB T6G 2G2, Canada.
Acc Chem Res. 2025 Jul 21. doi: 10.1021/acs.accounts.5c00211.
ConspectusPolycyclic aromatic hydrocarbons (PAHs) have become ubiquitous in the design of organic electronics due to their extended π-electron systems that give rise to potentially useful optical and electronic properties. These properties─chiefly absorption, emission, and semiconductivity─can be tuned to suit a particular device application through changes to the size and shape of the molecule's backbone, through incorporation of heteroatoms into the core structure, and through functionalization along the periphery. To that end, synthetic design of PAHs necessitates versatile methodology to rapidly expand the π-electron system without sacrificing the solubility that allows the materials to be processed into devices.Alkyne benzannulation is a powerful tool for the synthesis of such PAHs due to the energetically downhill process of making an aromatic ring from a high-energy triple bond. Furthermore, functionalization of the alkynes can increase not only solubility but also steric strain in the backbone, resulting in highly contorted, even chiral, structures. Because the benzannulation process is so energetically favorable, even these very strained PAHs can be synthesized with relative ease under mild conditions.In this Account, we summarize our work and the development of our methods for utilizing alkyne benzannulation to synthesize contorted, and in many cases chiral, PAHs, as well as highly soluble graphene nanoribbons. Trifluoroacetic acid (TFA) is effective for the benzannulation of alkynes to -condensed PAH systems, creating phenanthrene-like moieties. However, we found that to generate -condensed systems with pyrene-like moieties, a much stronger Brønsted acid, such as triflic acid (TfOH), is required. Our combination of TFA for clean benzannulation of half of the alkynes under mild conditions, followed by TfOH to complete benzannulation of the remaining alkynes, was used to great effect in the synthesis of 5-armchair graphene nanoribbons and their oligomers, the pyrenacenes. This method was, unfortunately, limited to alkynes bearing electron-rich aromatic substituents. To overcome this obstacle and broaden the scope, we screened Lewis acid catalysts and found that InCl is effective for alkynes bearing much less electron-rich aromatics, and even alkynes bearing only alkyl chains, under milder reaction conditions than with the Brønsted acids. With these two methods, we synthesized the first chiral peropyrenes and the first chiral teropyrene, as well as other compounds exhibiting twistacene and helicene chirality. We later found that the Lewis acidity of InCl can be increased by the addition of a AgNTf cocatalyst to effect more difficult benzannulations while keeping the reaction conditions mild. These methods of alkyne benzannulation allow us a great deal of control over the size and shape of the PAH backbone, thereby giving us control over the optical and electronic properties, to give us a suite of compounds that exhibit absorption and fluorescence across the visible spectrum.
综述
多环芳烃(PAHs)因其扩展的π电子体系而在有机电子器件设计中无处不在,这种π电子体系赋予了其潜在有用的光学和电子性质。通过改变分子主链的大小和形状、将杂原子引入核心结构以及沿周边进行功能化,可以调节这些性质,主要是吸收、发射和半导体性质,以适应特定的器件应用。为此,PAHs的合成设计需要通用的方法,以便在不牺牲材料加工成器件所需溶解性的情况下快速扩展π电子体系。
炔烃苯并环化是合成此类PAHs的有力工具,因为从高能三键形成芳香环的过程在能量上是下坡的。此外,炔烃的功能化不仅可以增加溶解性,还可以增加主链中的空间应变,从而产生高度扭曲甚至手性的结构。由于苯并环化过程在能量上非常有利,即使是这些非常紧张的PAHs也可以在温和条件下相对容易地合成。
在本综述中,我们总结了我们利用炔烃苯并环化合成扭曲的(在许多情况下是手性的)PAHs以及高溶解性石墨烯纳米带的工作和方法的发展。三氟乙酸(TFA)对于炔烃与稠合PAH体系的苯并环化是有效的,可生成菲样部分。然而,我们发现要生成芘样部分的稠合体系,需要更强的布朗斯特酸,如三氟甲磺酸(TfOH)。我们将TFA用于在温和条件下对一半炔烃进行干净的苯并环化,然后用TfOH完成其余炔烃的苯并环化,这在合成5-扶手椅型石墨烯纳米带及其低聚物芘并苯中发挥了很大作用。不幸的是,这种方法仅限于带有富电子芳基取代基的炔烃。为了克服这一障碍并扩大范围,我们筛选了路易斯酸催化剂,发现InCl对于带有电子丰富程度低得多的芳烃的炔烃,甚至对于仅带有烷基链的炔烃,在比布朗斯特酸更温和的反应条件下是有效的。通过这两种方法,我们合成了第一种手性过芘和第一种手性三联芘,以及其他表现出扭曲并四苯和螺旋烯手性的化合物。我们后来发现,通过添加AgNTf助催化剂可以提高InCl的路易斯酸性,以实现更困难的苯并环化,同时保持反应条件温和。这些炔烃苯并环化方法使我们能够对PAH主链的大小和形状进行大量控制,从而控制光学和电子性质,为我们提供了一系列在可见光谱范围内表现出吸收和荧光的化合物。