» Articles » PMID: 26664577

Preparative Semiconductor Photoredox Catalysis: An Emerging Theme in Organic Synthesis

Overview
Specialty Chemistry
Date 2015 Dec 15
PMID 26664577
Citations 5
Authors
Affiliations
Soon will be listed here.
Abstract

Heterogeneous semiconductor photoredox catalysis (SCPC), particularly with TiO2, is evolving to provide radically new synthetic applications. In this review we describe how photoactivated SCPCs can either (i) interact with a precursor that donates an electron to the semiconductor thus generating a radical cation; or (ii) interact with an acceptor precursor that picks up an electron with production of a radical anion. The radical cations of appropriate donors convert to neutral radicals usually by loss of a proton. The most efficient donors for synthetic purposes contain adjacent functional groups such that the neutral radicals are resonance stabilized. Thus, ET from allylic alkenes and enol ethers generated allyl type radicals that reacted with 1,2-diazine or imine co-reactants to yield functionalized hydrazones or benzylanilines. SCPC with tertiary amines enabled electron-deficient alkenes to be alkylated and furoquinolinones to be accessed. Primary amines on their own led to self-reactions involving C-N coupling and, with terminal diamines, cyclic amines were produced. Carboxylic acids were particularly fruitful affording C-centered radicals that alkylated alkenes and took part in tandem addition cyclizations producing chromenopyrroles; decarboxylative homo-dimerizations were also observed. Acceptors initially yielding radical anions included nitroaromatics and aromatic iodides. The latter led to hydrodehalogenations and cyclizations with suitable precursors. Reductive SCPC also enabled electron-deficient alkenes and aromatic aldehydes to be hydrogenated without the need for hydrogen gas.

Citing Articles

Linker-Assisted CdS-TiO Nanohybrids as Reusable Visible Light Photocatalysts for the Oxidative Hydroxylation of Arylboronic Acids.

Castro-Godoy W, Schmidt L, Flores-Ona D, Perez-Prieto J, Galian R, Arguello J J Org Chem. 2023; 88(10):6489-6497.

PMID: 36930860 PMC: 10204062. DOI: 10.1021/acs.joc.2c02964.


Synthetic Approaches for C-N Bonds by TiO Photocatalysis.

Ma D, Zhai S, Wang Y, Liu A, Chen C Front Chem. 2019; 7:635.

PMID: 31620428 PMC: 6759479. DOI: 10.3389/fchem.2019.00635.


Visible-Light-Mediated [4+2] Annulation of N-Cyclobutylanilines with Alkynes Catalyzed by Self-Doped Ti @TiO.

Wang J, Mao C, Feng P, Zheng N Chemistry. 2017; 23(61):15396-15403.

PMID: 28608493 PMC: 5813488. DOI: 10.1002/chem.201701587.


Synthetic Strategies for 5- and 6-Membered Ring Azaheterocycles Facilitated by Iminyl Radicals.

Walton J Molecules. 2016; 21(5).

PMID: 27213311 PMC: 6273063. DOI: 10.3390/molecules21050660.


Functionalised Oximes: Emergent Precursors for Carbon-, Nitrogen- and Oxygen-Centred Radicals.

Walton J Molecules. 2016; 21(1):63.

PMID: 26751437 PMC: 6273297. DOI: 10.3390/molecules21010063.

References
1.
Murata C, Yoshida H, Hattori T . Visible light-induced photoepoxidation of propene by molecular oxygen over chromia-silica catalysts. Chem Commun (Camb). 2002; (23):2412-3. DOI: 10.1039/b108063f. View

2.
Zou Y, Chen J, Xiao W . Homogeneous visible-light photoredox catalysis. Angew Chem Int Ed Engl. 2013; 52(45):11701-3. DOI: 10.1002/anie.201307206. View

3.
Manley D, McBurney R, Miller P, Walton J, Mills A, ORourke C . Titania-promoted carboxylic acid alkylations of alkenes and cascade addition-cyclizations. J Org Chem. 2014; 79(3):1386-98. PMC: 3963454. DOI: 10.1021/jo4027929. View

4.
Fan W, Zhang Q, Wang Y . Semiconductor-based nanocomposites for photocatalytic H2 production and CO2 conversion. Phys Chem Chem Phys. 2013; 15(8):2632-49. DOI: 10.1039/c2cp43524a. View

5.
Lang X, Ma W, Chen C, Ji H, Zhao J . Selective aerobic oxidation mediated by TiO(2) photocatalysis. Acc Chem Res. 2013; 47(2):355-63. DOI: 10.1021/ar4001108. View