Synthesis 2024; 56(03): 399-407
DOI: 10.1055/a-2218-9298
feature

Boron Lewis Acid Catalyzed Hydrophosphorylation of N-Heteroaryl-Substituted Alkenes

Soojin Kwak
,
Jeongin Choi
,
This work was supported by Basic Science Research Program through the National Research Foundation of Korea (NRF) funded by the Ministry of Science, ICT & Future Planning (2021R1A2C4001752).


Abstract

The hydrophosphorylation of N-heteroaryl-substituted alkenes catalyzed by a boron Lewis acid catalyst is reported. This reaction occurs with a range of alkenes bearing N-heterocycles, including pyridines, a quinoline, a pyrrole, and a benzothiazole, resulting in the production of β-N-heteroaryl alkylphosphonates in good yields under additive-free, operationally simple conditions. The mechanistic insights suggest that this hydrophosphorylation involves the deprotonation of the P–H bond of dialkyl phosphites, enabled by the cooperative effects of a boron acid and the basic N-heterocyclic moiety of the alkenes. The resulting phosphonate anion serves as an effective phosphorus nucleophile for the conjugate addition to the concurrently formed N-protonated alkenes. These β-N-heteroaryl alkylphosphonates can be further converted into other valuable organophosphorus compounds through the introduction of an alcohol group or the reduction of the phosphine oxide moiety.

Supporting Information



Publication History

Received: 23 October 2023

Accepted after revision: 28 November 2023

Accepted Manuscript online:
28 November 2023

Article published online:
02 January 2024

© 2023. Thieme. All rights reserved

Georg Thieme Verlag KG
Rüdigerstraße 14, 70469 Stuttgart, Germany

 
  • References


    • For selected examples of the usefulness of β-pyridyl phosphines, see:
    • 1a Krečmerová M, Majer P, Rais R, Slusher BS. Front. Chem. 2022; 10: 889737
    • 1b Heidel KM, Dowd CS. Future Med. Chem. 2019; 11: 1625
    • 1c Chen L, Zou Y.-X. Org. Biomol. Chem. 2018; 16: 7544
    • 1d Deng L, Dio J, Chen P, Pujari V, Yao Y, Cheng G, Crick DC, Prasad BV. V, Song Y. J. Med. Chem. 2011; 54: 4721

      For selected examples of P,N-ligands, see:
    • 2a Rong MK, Holtrop F, Slootweg JC, Lammertsma K. Coord. Chem. Rev. 2019; 380: 1
    • 2b Rokade BV, Guiry PJ. ACS Catal. 2018; 8: 624
    • 2c Carroll MP, Guiry PJ. Chem. Soc. Rev. 2014; 43: 819
    • 2d Chen S, Ng JK.-P, Pullarkat SA, Liu F, Li Y, Leung P.-H. Organometallics 2010; 29: 3374
    • 2e Bunlaksananusorn T, Knochel P. Angew. Chem. Int. Ed. 2003; 42: 3941
    • 2f Kwong FY, Yang Q, Mak TC. W, Chan AS. C, Chan KS. J. Org. Chem. 2002; 67: 2769
    • 2g Loiseleur O, Hayashi M, Keenan M, Schmees N, Pfaltz A. J. Organomet. Chem. 1999; 576: 16

      For selected examples of conversion to other useful β-N-heteroaryl alkylphosphines, see:
    • 3a Ash J, Huang H, Cordero P, Kang JY. Org. Biomol. Chem. 2021; 19: 6007
    • 3b Kendall AJ, Salazar CA, Martino PF, Tyler DR. Organometallics 2014; 33: 6171
    • 3c Demmer CS, Krogsgaard-Larsen N, Bunch L. Chem. Rev. 2011; 111: 7981

      For examples of the synthesis of β-N-heteroaryl alkylphosphonates, see:
    • 4a Xu C.-H, Xiong Z.-Q, Li Y, Zhu Y.-P, Li J.-H. Org. Chem. Front. 2022; 9: 476
    • 4b Buquoi JQ, Lear JM, Gu X, Nagib DA. ACS Catal. 2019; 9: 5330
    • 4c He Y.-T, Won J, Kim J, Park B, Kim T, Baik M.-H, Hong S. Org. Chem. Front. 2018; 5: 2595
  • 5 Trost BM. Science 1991; 254: 1471

    • For selective reviews of hydrophosphorylation, see:
    • 6a Rulev AY. RSC Adv. 2014; 4: 26002
    • 6b Zhao D, Wang R. Chem. Soc. Rev. 2012; 41: 2095

      For selected examples and reviews of tautomerization of SPOs, see:
    • 7a Gallen A, Riera A, Verdaguer X, Grabulosa A. Catal. Sci. Technol. 2019; 9: 5504
    • 7b Janesko BG, Fisher HC, Bridle MJ, Montchamp J.-L. J. Org. Chem. 2015; 80: 10025

      For selected examples of cooperative deprotonation of H-phosphonates by acid/base catalysis, see:
    • 8a Kwak S, Choi J, Han J, Lee SY. ACS Catal. 2022; 12: 212
    • 8b Li J, Gao Z, Guo Y, Liu H, Zhao P, Bi X, Shi E, Xiao J. RSC. Adv. 2022; 12: 18889
    • 8c Liu Y, Fan X, Li ZH, Wang H. Chem. Commun. 2017; 53: 10890

      For selected examples of cooperative deprotonation of other pronucleophiles, see:
    • 9a Zhao C, Wang Y, Pham Q, Dai C, Chatterjee A, Wasa M. J. Am. Chem. Soc. 2023; 145: 14233
    • 9b Yang Q, Zhou J, Wang J. Chem. Sci. 2023; 14: 4413
    • 9c Tian J.-J, Liu N, Liu Q.-F, Sun W, Wang X.-C. J. Am. Chem. Soc. 2021; 143: 3054
    • 9d Cao M, Yesilcimen A, Wasa M. J. Am. Chem. Soc. 2019; 141: 4199
    • 9e Shang M, Cao M, Wang Q, Wasa M. Angew. Chem. Int. Ed. 2017; 56: 13338
  • 10 For the pK a value of organophosphorus compounds, see: Li J.-N, Liu L, Fu Y, Guo Q.-X. Tetrahedron 2006; 62: 4453

    • For selected reviews of frustrated Lewis pairs, see:
    • 11a Stephan DW. J. Am. Chem. Soc. 2021; 143: 20002
    • 11b Stephan DW. J. Am. Chem. Soc. 2015; 137: 10018
  • 12 For the boron Lewis acid catalyzed P–H addition of diarylphosphine oxides to N-heteroaryl-substituted alkenes, see: Han J, Kim J, Lee J, Kim Y, Lee SY. J. Org. Chem. 2020; 85: 15476

    • For selected examples of synthetic utilities and biological applications of α-hydroxyphosphonates, see:
    • 13a Varga PR, Belovics A, Bagi P, Tóth S, Szakács G, Bősze S, Szabó R, Drahos L, Keglevich G. Molecules 2022; 27: 2067
    • 13b Rádai Z. Phosphorus Sulfur Silicon Relat. Elem. 2019; 194: 425
    • 13c Rádai Z, Keglevich G. Molecules 2018; 23: 1493
    • 13d Chakrabarty S, Trakacs JM. ACS Catal. 2018; 8: 10530

      For selected examples of reduction of tertiary phosphine oxides, see:
    • 14a Yamada M, Goto M, Yamano M. Tetrahedron Lett. 2021; 67: 152837
    • 14b Merle N, Kociok-Köhn G, Mahon MF, Frost CG, Ruggerio GD, Weller AS, Willis MC. Dalton Trans. 2004; 3883
    • 14c Jaska CA, Dorn H, Lough AJ, Manners I. Chem. Eur. J. 2003; 9: 271
    • 14d Volkov O, Macías R, Rath NP, Barton L. Inorg. Chem. 2002; 41: 5837

      For selected examples of deprotection procedures of phosphine-borane complexes, see:
    • 15a Demchuk OM, Jasinski R, Strzelecka D, Dziuba K, Kula K, Chrzanowski J, Krasowska D. Pure Appl. Chem. 2018; 90: 49
    • 15b Sayalero S, Pericàs MA. Synlett 2006; 2585
    • 15c Schröder M, Nozaki K, Hiyama T. Bull. Chem. Soc. Jpn. 2004; 77: 1931

      For synthetic methods of 1,1-disubstituted pyridyl alkenes from ketones (Wittig reaction), see:
    • 16a Wang J, Shao B, Ge H, Li Y, Qi H, Xiao L. Org. Lett. 2023; 25: 5333
    • 16b Fu S, Wang L, Dong H, Yu J, Xu L, Xiao J. Tetrahedron Lett. 2016; 62: 4533
    • 16c Li Y, Guo F, Zha Z, Wang Z. Chem. Asian J. 2013; 8: 534