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The benzyne triple bond is structurally distorted due to ring strain.
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Reference materials and chemical discussions establish that the benzyne triple bond experiences geometric constraints and high angular ring strain that result in diminished in-plane p-orbital overlap and structural distortion compared to linear alkynes.

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2019 · cited by 0
Considerable progress has been made in recent years in chemical functionalization of fullerene molecules. In some cases, the predominant reaction products are different from those obtained (using the same reactants) from polycyclic aromatic hydrocarbons (PAHs). One such example is the cycloaddition of o-benzyne to C60. It is well established that benzyne adds across one of the rings in naphthalene, anthracene and other PAHs forming the [2+4] cycloaddition product (benzobicyclo[2.2.2.]-octatriene with naphthalene and triptycene with anthracene). However, Hoke et al demonstrated that the only reaction path for o-benzyne with C60 leads to the [2+2] cycloaddition product in which benzyne adds across one of the interpentagonal bonds (forming a cyclobutene ring in the process). Either reaction product results in a loss of aromaticity and distortion of the PAH or fullerene substrate, and in a loss of strain in the benzyne. It is not clear, however, why different products are preferred in these cases. In the current paper, we consider the stability of benzyne-nanotube adducts and the ability of Brenner's potential energy model to describe the structure and stability of these adducts. The Brenner potential has been widely used for describing diamondoid and graphitic carbon. Recently it has also been used for molecular mechanics and molecular dynamics simulations of fullerenes and nanotubes. However, it has not been tested for the case of functionalized fullerenes (especially with high Formation of Carbon Nanotube Based Gears: Quantum Chemistry and Molecular Mechanics Study of the Electrophilic Addition of o-Benzyne to Fullerenes, Graphene, and Nanotubes - NASA Technical Reports Server (NTRS) NTRS NTRS - NASA Technical Reports Server Search more_vert Collections About News Help Login Press Enter or click the Search button to begin your search. Back to Results Formation of Carbon Nanotube Based Gears: Quantum Chemistry and Molecular Mechanics Study of the Electrophilic Addition of o-Benzyne to Fullerenes, Graphene, and Nanotubes Considerable progress has been made in recent years in chemical functionalization of fullerene molecules. In some cases, the predominant reaction products are different from those obtained (using the same reactants) from polycyclic aromatic hydrocarbons (PAHs). One such example is the cycloaddition of o-benzyne to C60. It is well established that benzyne adds across one of the rings in naphthalene, anthracene and other PAHs forming the [2+4] cycloaddition product (benzobicyclo[2.2.2.]-octatriene with naphthalene and triptycene with anthracene). However, Hoke et al demonstrated that the only reaction path for o-benzyne with C60 leads to the [2+2] cycloaddition product in which benzyne adds across one of the interpentagonal bonds (forming a cyclobutene ring in the process). Either reaction product results in a loss of aromaticity and distortion of the PAH or fullerene substrate, and in a loss of strain in the benzyne. It is not clear, however, why different products are preferred in these cases. In the current paper, we consider the stability of benzyne-nanotube adducts and the ability of Brenner's potential energy model to describe the structure and stability of these adducts. The Brenner potential has been widely used for describing diamondoid and graphitic carbon. Recently it has also been used for molecular mechanics and molecular dynamics simulations of fullerenes and nanotubes. For a given basis set expansion, it is comparable in accuracy to the MP2 method (better than Hartree Fock, but less accurate than more extensive electron correlation methods such as MP4 or CCSD). However, for systems with large numbers of basis functions it more efficient than any other methods that include electron correlation effects. In this presentation we show the results of DFT calculations for the reaction of benzyne with naphthalene, C60, and nanotube models. We compare energies for [2+2] and [2+4] cycloaddition products. The preferred products for the naphthalene and C60 reactions have been determined by experiment and, thus, these cases serve as a validation of our quantum chemical approach. We also compare the DFT and Brenner potential results. Finally we can predict the likelihood of reaction between benzyne and nanotubes. Document ID 20020041241 Acquisition Source Ames Research Center Document Type Other Authors Jaffe, Richard (NASA Ames Research Center Moffett Field, CA United States) Han, Jie (NASA Ames Research Center Moffett Field, CA United States) Globus, Al (NASA Ames Research Center Moffett Field, CA United States) Chancellor, Marisa K.
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rails:sufficiency:supported:for=2+1p:against=0+0p | v55:sufficiency

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Aryne In organic chemistry, arynes and benzynes are a class of highly reactive chemical species derived from an aromatic ring by removal of two substituents. Arynes are examples of didehydroarenes (1,2-didehydroarenes in this case), although 1,3- and 1,4-didehydroarenes are also known. Arynes are examples of alkynes under high strain. ## Bonding in arynes The alkyne representation of benzyne is the most widely encountered. Arynes are usually described as having a strained triple bond (left), but resonance contributors include a cumulene form (middle) and biradical form (right): Geometric constraints on the triple bond in benzyne result in diminished overlap of in-plane p-orbitals, and thus weaker triple bond. The vibrational frequency of the triple bond in benzyne was assigned by Radziszewski to be 1846 cm−1, indicating a weaker triple bond than in unstrained alkyne with vibrational frequency of approximately 2150 cm−1. Nevertheless, benzyne is more like a strained alkyne than a diradical, as seen from the large singlet–triplet gap and alkyne-like reactivity. The LUMO of aryne lies much lower than the LUMO of unstrained alkynes, which makes it a better energy match for the HOM
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Aryne Organic compound made by removing substituents from an aromatic ring In [organic chemistry](./Organic_chemistry), **arynes** and **benzynes** are a class of highly [reactive](./Reactivity_(chemistry)) chemical [species](./Chemical_species) derived from an [aromatic ring](./Aromatic_ring) by removal of two [substituents](./Substituent). Arynes are examples of didehydroarenes (1,2-didehydroarenes in this case), although 1,3- and 1,4-didehydroarenes are also known. Arynes are examples of [alkynes](./Alkyne) under high [strain](./Ring_strain). ## Bonding in arynes The alkyne representation of benzyne is the most widely encountered. Arynes are usually described as having a strained triple bond (left), but resonance contributors include a [cumulene](./Cumulene) form (middle) and biradical form (right): [![](https://upload.wikimedia.org/wikipedia/commons/thumb/e/e2/Benzyne_resonance.svg/250px-Benzyne_resonance.svg.png)](./File:Benzyne_resonance.svg) Geometric constraints on the triple bond in benzyne result in diminished overlap of in-plane p-orbitals, and thus weaker triple bond. The vibrational frequency of the triple bond in benzyne was assigned by Radziszewski to be 1846 cm−1, i
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# Structure of Benzyne Tags: organic-chemistry, hybridization - Score: 12 - Views: 10106 - Answers: 1 - Answered: yes - Asked by: NeilRoy (1729 rep) - Asked: 2015-10-01 - Edited: 2015-10-01 - Site: chemistry - Closed: closed ## Question I have seen in a lot of pictures that benzyne looks like: But aren't $\ce{C_6}$ and $\ce{C_5}$ $-$ $\ce{sp}$ hybridized? And hence bond angle should be $180^{\circ}$ or at least near about it? Something like : Or, ? ## Answers ### Answer by Jan (score: 15 [ACCEPTED]) Yes, but. Yes, in the conventional low-level models, one would consider the two carbons in benzyne you mentioned as sp-hybridised. And that does mean that their orbitals seem to be pointing the wrong way. However, a better picture would be to use an orbital which is a lot closer to sp²-hybridisation, and an even better picture would calculate orbitals computationally (I can’t do that, but Orthocresol can). The thing is, all these pictures show, that the triple bond in benzyne is rather different from those in linear molecules or large cycloalkynes such as cyclodecyne ($\ce{C10H16}$). It contains a large angular strain, not unlike very small saturated rings such as cycl
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  1. Formation of Carbon Nanotube Based Gears: Quantum Chemistry and Molecular Mechanics Study of the Electrophilic Addition of o-Benzyne to Fullerenes, Graphene, and Nanotubesprimary-datano side taken
  2. Arynereferencesame source L25no side taken
  3. Arynereferencesame source L25no side taken
  4. Structure of Benzyne [duplicate] - Chemistry Stack Exchangereferenceno side taken
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first checked01 Aug 2026
judged → COMMON KNOWLEDGE · 9501 Aug 2026
held for human review08 Aug 2026
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