Arene C‐H activation at aluminium(I) : meta selectivity driven by the electronics of SNAr chemistry
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This is a self-archived version of an original article. This version may differ from the original in pagination and typographic details. Author(s): Title: Year: Version: Copyright: Rights: Rights url: Please cite the original version: CC BY-NC 4.0 https://creativecommons.org/licenses/by-nc/4.0/ Arene C‐H activation at aluminium(I) : meta selectivity driven by the electronics of SNAr chemistry 2020 The Authors. Accepted version (Final draft) Hicks, Jamie; Vasko, Petra; Heilmann, Andreas; Goicoechea, Jose; Aldridge, Simon Hicks, J., Vasko, P., Heilmann, A., Goicoechea, J., & Aldridge, S. (2020). Arene C‐H activation at aluminium(I) : meta selectivity driven by the electronics of SNAr chemistry. Angewandte Chemie, 59(46), 20376-20380. https://doi.org/10.1002/anie.202008557 2020
CH Activation Hot Paper Arene CH Activation at Aluminium(I): meta Selectivity Driven by the Electronics of SNAr Chemistry Jamie Hicks, Petra Vasko, Andreas Heilmann, Jose M. Goicoechea,* and Simon Aldridge* In memory of Malcolm Green Abstract: The reactivity of the electron-rich anionic AlI aluminyl compound K2[(NON)Al]2(NON=4,5-bis(2,6-diisopropylanilido)-2,7-di-tert-butyl-9,9-dimethylxanthene) towards monoand disubstituted arenes is reported. CH activation chemistry with n-butylbenzene gives exclusively the product of activation at the arene meta position. Mechanistically, this transformation proceeds in a single step via a concerted Meisenheimer-type transition state. Selectivity is therefore based on similar electronic factors to classical SNAr chemistry, which implies the destabilisation of transition states featuring electron-donating groups in either ortho or para positions. In the cases of toluene and the three isomers of xylene, benzylic CH activation is also possible, with the product(s) formed reflecting the feasibility (or otherwise) of competing arene CH activation at a site which is neither ortho nor para to a methyl substituent. The functionalisation of unactivated CH bonds has long been regarded as one of the “Holy Grails” of organometallic chemistry and remains the subject of significant research effort today.[1] The idea of exploiting this near ubiquitous “functional group” to build molecular complexity represents an attractive synthetic paradigm, but one that brings with it inherent challenges stemming from issues of selectivity.[2] Oxidative addition at a transition metal centre represents a widely investigated mechanism by which initial activation of aC H bond can be effected.[3] A primary driver of selectivity in many cases are steric factors, reflecting a relatively late transition state, that is, the close approach to the metal centre required to effect significant transfer of electron density to the CHs* orbital.[4] While Greens seminal study reporting the oxidative addition of the CH bond in benzene at tungsten was reported in 1970,[5] the accomplishment of an analogous transformation at a main group metal centre was reported much more recently.[6] Main group compounds which can activate benzene by deprotonation are well known,[7] (and meta selectivity has been achieved for some arene substrates by employing templated systems),[8] but the formal oxidative addition of CH bonds at a single main group metal centre was for many years limited to more activated hydrocarbon substrates.[9] In 2018 we reported the synthesis of the anionic AlI aluminyl compound 1,[6] which is sufficiently electron-rich to act as a metal-centred nucleophile towards CX and MX bonds,[10] and, in addition, reacts with benzene at 60 8 C via formal CH oxidative addition to give the corresponding AlIII phenyl hydride (2, Scheme 1).[6] Subsequently, a number of other aluminyl compounds have been reported,[11] including others which will effect a similar transformation with benzene.[11b,e,12] With this in mind we were keen to explore the scope and selectivity for CH activation chemistry of 1with substituted arenes. These studies are reported in the current manuscript. Initial experiments focused on the reactivity of the potassium aluminyl dimer 1with the monosubstituted arenes toluene, methoxybenzene (anisole) and bromobenzene. The reaction with toluene requires similar conditions to benzene: heating 1in neat arene solvent at 80 8 C for 2 days leads to complete consumption of the aluminyl starting material. The products, both resulting from CH bond activation, have been unambiguously characterised using Scheme 1. Formal oxidative addition of the CH bond in benzene at the AlIcentres in potassium aluminyl complex 1.[6] Dipp=2,6-diisopropylphenyl. [*] Dr. J. Hicks, Dr. P. Vasko, A. Heilmann, Prof. J. M. Goicoechea, Prof. S. Aldridge Inorganic Chemistry Laboratory, Department of Chemistry University of Oxford South Parks Road, Oxford, OX1 3QR (UK) E-mail: jose.goicoeche[email protected] [email protected].uk Dr. J. Hicks Research School of Chemistry Australian National University, Building 137 Sullivan’s Creek Road, Acton, ACT 2601 (Australia) Dr. P. Vasko Department of Chemistry, Nanoscience Center University of Jyvskyl P. O. Box 35, 40014 Jyvskyl (Finland) Supporting information and the ORCID identification number(s) for the author(s) of this article can be found under: https://doi.org/10.1002/anie.202008557. 2020 The Authors. Published by Wiley-VCH GmbH. This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited. A ngewandte Chemi e Communications How to cite: Angew. Chem. Int. Ed. 2020,59, 20376–20380 International Edition: doi.org/10.1002/anie.202008557 German Edition: doi.org/10.1002/ange.202008557 20376 2020 The Authors. Published by Wiley-VCH GmbH Angew. Chem. Int. Ed. 2020,59, 20376 –20380
spectroscopic, analytical and crystallographic methods (Scheme 2). Two species can be identified in a 3:1 ratio both in situ (e.g. by 1H NMR monitoring), and in the final recrystallised product (both crystallographically and spectroscopically). These are shown to result from meta-aryl (3a) and benzylic CH bond activation (3b); no hint of the corresponding ortho-orpara-CH activation products is obtained either from in situ measurements, or in the isolated product mixture. 3a/3bcocrystallise, with the dimeric structural motif revealed crystallographically being similar to that found for the benzene activation product 2(Figure 1). Within the symmetrical dimer, both anionic sites are occupied by the aryl activation products [(NON)AlH(C6H4Me-3)](NON=4,5bis(2,6-diisopropylanilido)-2,7-di-tert-butyl-9,9-dimethylxanthene) and the benzyl isomer [(NON)AlH(CH2Ph)]in a 3:1 ratio, giving an overall composition reflecting the ratio of 3a:3b obtained from NMR measurements (also 3:1). Structurally, the aluminium centres in 3a/3b and 2are very similar,[6] featuring a five-coordinate metal geometry which lies between square pyramidal and trigonal bipyramidal, with due allowance made for the uncertainty in the H-atom locations (e.g. t=0.59 for 3a). Viewed from the square pyramidal limit, the N, O and H donors constitute an approximate basal plane, to which the AlC bond adopts a roughly perpendicular alignment. The corresponding reactions with anisole and bromobenzene were investigated with a view to probing electronic effects on the reactivity of 1with arenes. Under otherwise identical conditions, the reaction with anisole proceeds much more rapidly (completion in 30 min), but can be shown by spectroscopic and crystallographic methods to proceed not via CH activation, but via the cleavage of a CO bond, to generate aluminium-bound methyl and phenoxy substituents (i.e. 4, Scheme 3). While this chemistry formally constitutes oxidative addition of the CO bond at AlI,[13] we propose, based on the reactivity of 1towards MeI and MeOTf,[6] that it proceeds via SN2 nucleophilic attack on the methyl group of anisole with ejection of PhO. Subsequent retention of the phenoxide group within the coordination sphere of aluminium (in contrast to the precipitation of KI/KOTf in the reactions with MeI/MeOTf) presumably reflects the differing coordination capabilities of PhOcompared to Iand OTfat AlIII. The reaction with bromobenzene (see ESI) also proceeds very rapidly, in this case by CBr activation presumably through a SNAr mechanism akin to that seen with benzene (see below).[14] Given the regioselectivity observed in the reaction of 1with toluene, we were interested in its implications in the corresponding chemistry with disubstituted arenes. Accordingly, the reactions of 1with ortho-, metaand para-xylenes have been investigated (Scheme 4) under similar reaction conditions. The results of these experiments are consistent with those obtained with toluene, that is, among arene CH bonds, only the meta positions are activated. As such, with substrates such as the ortho and para isomers of xylene (in which all arene CH groups are either ortho or para to one of the methyl substituents) no detectable aryl–aluminium products are formed. In the case of ortho-xylene the exclusive product, K2[(NON)AlH{CH2(C6H4Me-2)}]2(5), results from activation at the benzylic CH position (Scheme 4 and Figure 2). Similar considerations apply to the reaction with para-xylene, although in this case the initially formed [(NON)AlH{CH2(C6H4Me-4)]moiety readily eliminates para-xylylene (which oligomerises) and gives the known dihydroaluminate K2[(NON)AlH2]2(7)[6] as the aluminiumcontaining product (Scheme 4 and ESI). In the case of metaxylene, which (uniquely) does feature an arene CH site that is neither ortho or para to a methyl group, activation at the mutually meta (5-) position competes with benzylic activation, leading to the formation of a ca. 2:3 mixture of aryl and benzyl isomers 6aand 6b (Scheme 4 and Figure 2). Scheme 2. Reaction of potassium aluminyl dimer 1with toluene proceeding through formal CH oxidative addition at AlI. Figure 1. Molecular structures of 3a (left) and 3b (right) within the dimeric unit as determined by X-ray crystallography. Thermal ellipsoids set at the 50% probability level. Solvate molecules and most H atoms omitted, and selected groups shown in wireframe format for clarity. Selected bond lengths [] and angles [ 8 ] for 3a: Al–O 2.146(2), Al–N 1.937(2), 1.938(2), Al–C 2.053(5), Al–H 1.77(5); N-Al-N 129.2(1); for 3b: Al–C 1.82(2).[15] Scheme 3. Left: Reaction of 1with methoxybenzene (anisole) proceeding through formal CO oxidative addition at AlI. Right: Molecular structure of 4within the dimeric unit as determined by X-ray crystallography. Thermal ellipsoids set at the 50% probability level. H atoms omitted and selected groups shown in wireframe format for clarity. Selected bond lengths [] and angles [ 8 ]: Al–O 2.122(1), Al–N 1.936(2), 1.939(1), Al–C 2.009(3), Al–OPh 1.799(2); N-Al-N 134.6(1).[15] A ngewandte Chemi e Communications 20377Angew. Chem. Int. Ed. 2020,59, 20376 –20380 2020 The Authors. Published by Wiley-VCH GmbH www.angewandte.org
To rationalise the observed meta selectivity in aryl CH activation we sought a system which we could examine (both experimentally and computationally) that exclusively undergoes arene CH activation, with no competing reactivity at the benzylic positions. We therefore examined the reaction of 1with n-butylbenzene, hypothesising that the more sterically encumbered and less acidic nature of the benzylic CH bonds in this system might bias the product mixture further in favour of aryl CH activation (cf. toluene). At 80 8 C this reaction proceeds more slowly than with toluene (taking 7 days to reach completion), but it does indeed lead to exclusive activation of the meta-CH bonds (within the limits of detection of 1H NMR spectroscopy; Scheme 5). As such, the only product observed (either in situ or in the isolated product) is K2[(NON)AlH(C6H4nBu-3)]2(8), the structure of which has also been confirmed crystallographically. Acknowledging the more sterically protected nature of the ortho-CH positions, we were interested to probe the underlying reasons for the observed selectivity, and in particular for the unusual meta versus para discrimination. In previous work we showed by quantum chemical methods that CH activation in benzene (Scheme 1) proceeds via nucleophilic attack by the aluminyl, generating a Meisenheimer type transition state which collapses by C-to-Al hydride migration.[11e,16,17] A similar concerted SNAr (cSNAr) mechanism has also been advanced by Fernandez and Cabrera-Trujillo for arene CH activation in benzene and extended arenes by aluminyl reagents.[18–20] That said, the relatively close approach of the H atom of the CH bond to the aluminium centre in the transition state (ca. 1.8– 1.9 )[16,17] also suggests analogies with a classical oxidative addition pathway featuring a three-centre interaction.[21] With this in mind, we exploited density functional theory to probe the relative energies of the transition states corresponding to ortho,meta and para arene-CH activation in n-butylbenzene by 1 ’ (i.e. a cut-down monomeric aluminyl system [(NON’)Al]featuring methyl groups in the 2and 7positions of the NON ligand, rather than tBu). Notwithstanding the simplifications implied by this (monometallic) system, these calculations reveal not only that CH insertion is strongly exergonic (to the tune of 145.5, 148.6 and 151.7 kJmol1for the ortho,meta and para isomers, respectively), but also that the kinetic barriers associated with activation of the CH bonds of n-butylbenzene decrease in the order para (+125.7 kJmol1)>ortho (+124.7 kJmol1)>meta (+121.9 kJmol1). Similar transition state energies are calculated for the activation of Scheme 4. Reactions of 1with xylenes: benzylic and meta-CH activation with orthoand meta-xylenes; benzylic CH activation and elimination of para-xylylene with para-xylene. Figure 2. Molecular structures of 5(top), 6a (bottom left), and 6b (bottom right) within the dimeric unit as determined by X-ray crystallography. Thermal ellipsoids set at the 50% probability level. Solvate molecules and most H atoms omitted, and selected groups shown in wireframe format for clarity. Selected bond lengths [] and angles [ 8 ] for 5: Al–O 2.127(2), Al–N 1.946(2), 1.958(1), Al–C 2.081(3), Al–H 1.73(5); N-Al-N 130.6(1); for 6b: Al–O 2.152(2), Al–N 1.930(3), 1.935(3), Al–C 1.956(6), Al–H 1.81(6); N-Al-N 130.2(1); for 6a: Al–C 2.25(1).[15] Scheme 5. Left: Reaction of 1with n-butylbenzene. Right: Molecular structure of 8within the dimeric unit as determined by X-ray crystallography. Thermal ellipsoids set at the 50% probability level. H atoms omitted and selected groups shown in wireframe format for clarity. Selected bond lengths [] and angles [ 8 ]: Al–O 2.127(3), Al–N 1.934(6), 1.940(4), Al–C 2.003(4), Al–H 1.7(1); N-Al-N 129.6(2).[15] A ngewandte Chemi e Communications 20378 www.angewandte.org 2020 The Authors. Published by Wiley-VCH GmbH Angew. Chem. Int. Ed. 2020,59, 20376–20380
the arene CH bonds in toluene (+133.9, +130.4, +126.0 kJmol1for para,ortho and meta activation).[22] The origins of the lower energetic barrier in the case of the meta CH activation pathway can, in turn, be rationalised on the basis of resonance theory (Figure 3).[23] The fact that the transition state resembles a classical Meisenheimer complex, implies that the negative charge on the carbocyclic ring is carried to a greater degree by the positions ortho and para to the entering aluminyl nucleophile. As such, the location of electron-donating substituents (e.g. Me or nBu) in these positions is disfavoured. This hypothesis is corroborated by an analysis of the NPA charges at the carbon atoms of ring for the corresponding Meisenheimer transition state in the case of benzene. Charges of 0.215/0.214 are calculated for the two meta positions, as opposed to 0.342/0.371 for the ortho carbons, and 0.433 for the para position. It is interesting to note, with this in mind, that Harder has recently reported double CH activation in benzene by an aluminyl system in which the two aluminium fragments are arranged in mutually para positions. In this case however, the orientation of the second CH activation event is ascribed to a templation effect. In our systems we see no evidence for multiple CH activation events within the same substrate molecule.[11e] In summary, arene CH activation chemistry by an electron rich AlIcompound proceeds via a mechanism involving nucleophilic attack on the aromatic ring. The observed selectivity for meta-CH attack can be rationalised on the basis of the charge distribution in a transition state which resembles a classical Meisenheimer complex. Acknowledgements We thank the Leverhulme Trust (RP-2018-246) for funding aspects of this work. P.V. thanks the Academy of Finland (Grant No. 314794) and Prof. Heikki Tuononen for providing computational resources. J.H. thanks the Australian Research Council for funding (DE190100524). Conflict of interest The authors declare no conflict of interest. Keywords: aluminum · aluminyl nucleophiles · arenes · CH activation · SNAr mechanism [1] See, for example: J. A. Labinger, J. E. Bercaw, Nature 2002,417, 507– 514. [2] See, for example: K. Godula, D. Sames, Science 2006,312,67– 72. [3] For landmark examples, see: a) A. H. Janowicz, R. H. Bergmann, J. Am. Chem. Soc. 1982,104, 352–354; b) J. K. Hoyano, W. A. G. Graham, J. Am. Chem. Soc. 1982,104, 3723– 3725. [4] R. H. Crabtree, E. A. Holt, M. Lavin, S. M. Morehouse, Inorg. Chem. 1985,24, 1986– 1992. [5] M. L. H. Green, P. J. Knowles, J. Chem. Soc. Chem. Commun. 1970, 1677. [6] J. Hicks, P. Vasko, J. M. Goicoechea, S. Aldridge, Nature 2018, 557, 92– 95. [7] Organometallics in Synthesis: Third Manual (Ed.: M. Schlosser), Wiley, Hoboken, 2013. [8] For a landmark example of main group meta-CH metalation, see: a) A. J. Martnez-Martnez, A. R. Kennedy, R. E. Mulvey, C. T. OHara, Science 2014,346, 834 –837. For examples of meta selectivity in transition-metal-mediated CH activation, see: b) D. Leow, G. Li, T.-S. Mei, J.-Q. Yu, Nature 2012,486, 518– 522; c) R. Y. Tang, G. Li, J.-Q. Yu, Nature 2014,507, 215– 220. [9] For recent examples in AlIchemistry, see: a) T. Chu, I. Korobkov, G. I. Nikonov, J. Am. Chem. Soc. 2014,136, 9195– 9202; b) C. Bakewell, A. J. P. White, M. R. Crimmin, Chem. Sci. 2019,10, 2452–2458; c) T. N. Hooper, M. GarÅon, A. J. P. White, M. R. Crimmin, Chem. Sci. 2018,9, 5435–5440. [10] J. Hicks, A. Mansikkamki, P. Vasko, J. M. Goicoechea, S. Aldridge, Nat. Chem. 2019,11, 237–241. [11] a) R. J. Schwamm, M. D. Anker, M. Lein, M. P. Coles, Angew. Chem. Int. Ed. 2019,58, 1489–1493; Angew. Chem. 2019,131, 1503– 1507; b) S. Kurumada, S. Takamori, M. Yamashita, Nat. Chem. 2020,12, 36– 39; c) R. J. Schwamm, M. P. Coles, M. S. Hill, M. F. Mahon, C. L. McMullin, N. A. Rajabi, A. S. S. Wilson, Angew. Chem. Int. Ed. 2020,59, 3928–3932; Angew. Chem. 2020,132, 3956–3960; d) K. Koshino, R. Kinjo, J. Am. Chem. Soc. 2020,142, 9057 –9062; e) S. Harder, S. Grams, J. Eyselein, J. Langer, C. Frber, Angew. Chem. Int. Ed. 2020, https://doi.org/ 10.1002/anie.202006693; Angew. Chem. 2020, https://doi.org/10. 1002/ange.202006693; For recent reviews, see: f) K. Hobson, C. J. Carmalt, C. Bakewell, Chem. Sci. 2020,11, 6942–6956; g) J. Hicks, P. Vasko, J. M. Goicoechea, S. Aldridge, Angew. Chem. Int. Ed. 2020, https://doi.org/10.1002/anie.202007530; Angew. Chem. 2020, https://doi.org/10.1002/ange.202007530. [12] S. Brand, H. Elsen, J. Langer, S. Grams, S. Harder, Angew. Chem. Int. Ed. 2019,58, 15496–15503; Angew. Chem. 2019,131, 15642– 15649. [13] For other recent examples of CO bond activation at AlI, see: a) T. Chu, Y. Boyko, I. Korobkov, G. I. Nikonov, Organometallics 2015,34, 5363– 5365; b) M. R. Crimmin, M. J. Butler, A. J. P. White, Chem. Commun. 2015,51, 15994– 15996; T. N. Hooper, R. K. Brown, F. Rekhroukh, M. GarÅon, A. J. P. White, P. J. Costa, M. R. Crimmin, Chem. Sci. 2020, https://doi.org/10.1039/ D0SC01918F. [14] Reaction with chlorobenzene yields the analogous product K2[(NON)AlCl(Ph)]2via formal insertion into the CCl bond. [15] Deposition Numbers 2008536, 2008537, 2008538, 2008539, 2008540, 2008541, and 2010397 contain the supplementary crystallographic data for this paper. These data are provided free of charge by the joint Cambridge Crystallographic Data Centre and Fachinformationszentrum Karlsruhe Access Structures service www.ccdc.cam.ac.uk/structures. [16] J. Hicks, P. Vasko, J. M. Goicoechea, S. Aldridge, J. Am. Chem. Soc. 2019,141, 11000 –11003. Figure 3. Resonance structures relevant to the Meisenheimer-type transition state for arene CH activation by 1(EDG=electron-donating group). A ngewandte Chemi e Communications 20379Angew. Chem. Int. Ed. 2020,59, 20376–20380 2020 The Authors. Published by Wiley-VCH GmbH www.angewandte.org
[17] J. J. Cabrera-Trujillo, I. Fernandez, Chem. Eur. J. 2020, https:// doi.org/10.1002/chem.202000921. [18] For discussion of the concerted nucleophilic aromatic substitution pathway, see for example: a) E. E. Kwan, Y. Zeng, H. A. Besser, E. N. Jacobsen, Nat. Chem. 2018,10, 917–923; b) S. Rohrbach, A. J. Smith, J. H. Pang, D. L. Poole, T. Tuttle, S. Chiba, J. A. Murphy, Angew. Chem. Int. Ed. 2019,58, 16368– 16388; Angew. Chem. 2019,131, 16518–16540; for specific examples relating to metal-centred nucleophiles, see: c) M. GarÅon, C. Bakewell, A. J. P. White, M. Crimmin, Chem. Commun. 2019,55, 1805–1808. [19] A (non-isolated) intermediate analogous to K2[(NON)AlH- (Ph)]2has been postulated in the borylation of benzene by a Group 1 metal boryl system. The reaction in this case is thought to proceed mechanistically with the anionic Group 13 fragment acting as a base in the first instance. Reported in: T. Ohsato, Y. Okuno, S. Ishida, T. Iwamoto, K.-H. Lee, Z. Lin, M. Yamashita, K. Nozaki, Angew. Chem. Int. Ed. 2016,55, 11426– 11430; Angew. Chem. 2016,128, 11598–11602. [20] Functionalisation of benzene through an SNAr mechanism involving CH substitution by an alkyl nucleophile has recently been reported: A. S. S. Wilson, M. S. Hill, M. F. Mahon, C. Dinoi, L. Maron, Science 2017,358, 1168– 1171. [21] U. W. Maes, S. Verbeeck, T. Verhelst, A. Ekomi, N. von Wolff, G. Lefvre, E. A. Mitchell, A. Jutand, Chem. Eur. J. 2015,21, 7858– 7865. [22] These numbers will almost certainly represent upper limits for transition-state energies, given the stabilising effect of a (potentially) proximal K+cation. [23] M. B. Smith, J. March, Advanced Organic Chemistry, 6th ed., Wiley, Hoboken, 2007, chap. 13. Manuscript received: June 17, 2020 Accepted manuscript online: July 28, 2020 Version of record online: September 2, 2020 A ngewandte Chemi e Communications 20380 www.angewandte.org 2020 The Authors. Published by Wiley-VCH GmbH Angew. Chem. Int. Ed. 2020,59, 20376–20380