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Search for "hydroiodic acid" in Full Text gives 5 result(s) in Beilstein Journal of Organic Chemistry.

A novel methodology for the efficient synthesis of 3-monohalooxindoles by acidolysis of 3-phosphate-substituted oxindoles with haloid acids

  • Li Liu,
  • Yue Li,
  • Tiao Huang,
  • Dulin Kong and
  • Mingshu Wu

Beilstein J. Org. Chem. 2021, 17, 2321–2328, doi:10.3762/bjoc.17.150

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  • almost no product was observed. In addition, we also tested hydroiodic and hydrofluoric acid as a halogenating reagent in the reaction, which did not provide any desired product. Interestingly, the (2-oxoindolin-3-yl) phosphate substrates could be directly reduced into oxindoles using hydroiodic acid (57
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Published 07 Sep 2021

Fluorinated phenylalanines: synthesis and pharmaceutical applications

  • Laila F. Awad and
  • Mohammed Salah Ayoup

Beilstein J. Org. Chem. 2020, 16, 1022–1050, doi:10.3762/bjoc.16.91

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  • isolation, was carried out with red phosphorus in hydroiodic acid to give the fluorinated phenylalanine analogues 53a–h. Alternatively, a two-step sequence to generate amino acids 53a–h was attempted by first hydrolysis of 52a–h to form acids 54a–h which then were reduced with P/HI to the desired products
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Published 15 May 2020

One hundred years of benzotropone chemistry

  • Arif Dastan,
  • Haydar Kilic and
  • Nurullah Saracoglu

Beilstein J. Org. Chem. 2018, 14, 1120–1180, doi:10.3762/bjoc.14.98

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Published 23 May 2018

High-yielding continuous-flow synthesis of antimalarial drug hydroxychloroquine

  • Eric Yu,
  • Hari P. R. Mangunuru,
  • Nakul S. Telang,
  • Caleb J. Kong,
  • Jenson Verghese,
  • Stanley E. Gilliland III,
  • Saeed Ahmad,
  • Raymond N. Dominey and
  • B. Frank Gupton

Beilstein J. Org. Chem. 2018, 14, 583–592, doi:10.3762/bjoc.14.45

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  • chemistry; hydrogenation; hydroiodic acid; hydroxychloroquine; Introduction Our research group has been focused on the development of new synthetic methods for the preparation of a variety of active pharmaceutical ingredients for global health applications by employing the principles of process
  • Information File 1) 10 reacts rapidly and cleanly with 7 under flow conditions to give 6 in high yield (>80%). Furthermore, we have developed and optimized a continuous synthesis of 10 (Table 1), wherein hydroiodic acid is reacted with neat 3-acetyldihydrofuran-2(3H)-one (8) to provide a rapid route to 10
  • which is significantly higher in yield than in previously reported syntheses [38][39]. Initial results using diluted hydroiodic acid (20–40%) provided only modest conversion to product over a range of temperatures (Table 1, entries 1–5); however, the use of 55% hydroiodic acid (Table 1, entries 6–8) was
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Published 08 Mar 2018

New approaches to organocatalysis based on C–H and C–X bonding for electrophilic substrate activation

  • Pavel Nagorny and
  • Zhankui Sun

Beilstein J. Org. Chem. 2016, 12, 2834–2848, doi:10.3762/bjoc.12.283

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  • ][76][77][78][79]. Interestingly, such reaction mechanisms are not well understood, and the formation of trace quantities of hydroiodic acid rather than the direct substrate activation by molecular iodine has been frequently invoked to rationalize the outcome of these studies. Recently, Breugst and co
  • reactive complex with the LUMO. These results are further backed up by control experiments demonstrating that catalytic quantities of hydroiodic acid were less effective in promoting this reaction than molecular iodine, and hidden Brønsted acid catalysis is unlikely to be operational in these studies. In
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Published 23 Dec 2016
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