1 3
Topics in Current Chemistry (2018) 376:45
34. Hülsdünker A, Ritter A, Demuth M (1992) Linearly focussing solar reactor for chemical purpose.
Eur Photochem Assoc Newsl 45:22–25
35. Ritter A, Hülsdünker A, Ritterkamp P, Heimann F, Binder W, Klinge S, Demuth M (1997) Solare
photochemische synthese von feinchemikalien und solartechnische entwicklungen. In: Becker M,
Funken K-H (eds) Solare chemie und solare materialforschung. C.F. Müller Verlag, Heidelberg, pp
204–216
36. Demuth M, Ritter A (1998) Photochemical and thermochemical solar syntheses using flat-bed solar
collectors/solar reactors. US6660132B1
37. Heinemann C, Xing X, Warzecha KD, Ritterskamp P, Görner H, Demuth M (1998) An asymmetric induction principle and biomimetics with photons via electron transfer. Pure Appl Chem
70(11):2167–2176
38. Oelgemoller M (2016) Solar photochemical synthesis: from the beginnings of organic photochemistry to the solar manufacturing of commodity chemicals. Chem Rev 116(17):9664–9682
39. da Silva Júnior PE, Amin HIM, Nauth AM, da Silva Emery F, Protti S, Opatz T (2018) Flow photochemistry of azosulfones: application of “sunflow” reactors. ChemPhotoChem 2(10):878–883. https
://doi.org/10.1002/cptc.20180 0125
40. Lipp A, Lahm G, Opatz T (2016) Light induced c-c coupling of 2-chlorobenzazoles with carbamates, alcohols, and ethers. J Org Chem 81(11):4890–4897
41. Lipp B, Nauth AM, Opatz T (2016) Transition-metal-free decarboxylative photoredox coupling of
carboxylic acids and alcohols with aromatic nitriles. J Org Chem 81(15):6875–6882
42. Kim YJ, Jeong MJ, Kim JE, In I, Park CP (2015) Microreactor-mediated benzylic bromination in
concentrated solar radiation. Aust J Chem 68(11):1653–1656
43. Zhao F, Cambié D, Janse J, Wieland EW, Kuijpers KPL, Hessel V, Debije MG, Noël T (2017)
Scale-up of a luminescent solar concentrator-based photomicroreactor via numbering-up. ACS Sustain Chem Eng 6(1):422–429
44. Su Y, Kuijpers K, Hessel V, Noël T (2016) A convenient numbering-up strategy for the scale-up of
gas–liquid photoredox catalysis in flow. React Chem Eng 1(1):73–81
45. Cambié D, Zhao F, Hessel V, Debije MG, Noël T (2017) Every photon counts: understanding and
optimizing photon paths in luminescent solar concentrator-based photomicroreactors (LSC-PMs).
React Chem Eng 2(4):561–566
46. Zhao F, Cambié D, Hessel V, Debije MG, Noël T (2018) Real-time reaction control for solar production of chemicals under fluctuating irradiance. Green Chem 20(11):2459–2464
47. Funken K-H (1991) Solar chemistry: classification, criteria, and identification of R & D deficits.
Solar Energy Mat 24(1–4):370–385
48. Colmenares JC, Varma RS, Nair V (2017) Selective photocatalysis of lignin-inspired chemicals by
integrating hybrid nanocatalysis in microfluidic reactors. Chem Soc Rev 46(22):6675–6686
49. Funken K-H, Müller F-J, Ortner J, Riffelmann K-J, Sattler C (1999) Solar collectors versus lamps—
a comparison of the energy demand of industrial photochemical processes as exemplified by the
production of ε-caprolactam. Energy 24(8):681–687
50. Sattler C, Müller FJ, Riffelmann KJ, Ortner J, Funken KH (1999) Concept and economic evaluation
of an industrial synthesis of ε-caprolactam via solar photooximation of cyclohexane. Le Journal de
Physique IV 09(PR3):723–727
27
Reprinted from the journal
Topics in Current Chemistry (2018) 376:45
34. Hülsdünker A, Ritter A, Demuth M (1992) Linearly focussing solar reactor for chemical purpose.
Eur Photochem Assoc Newsl 45:22–25
35. Ritter A, Hülsdünker A, Ritterkamp P, Heimann F, Binder W, Klinge S, Demuth M (1997) Solare
photochemische synthese von feinchemikalien und solartechnische entwicklungen. In: Becker M,
Funken K-H (eds) Solare chemie und solare materialforschung. C.F. Müller Verlag, Heidelberg, pp
204–216
36. Demuth M, Ritter A (1998) Photochemical and thermochemical solar syntheses using flat-bed solar
collectors/solar reactors. US6660132B1
37. Heinemann C, Xing X, Warzecha KD, Ritterskamp P, Görner H, Demuth M (1998) An asymmetric induction principle and biomimetics with photons via electron transfer. Pure Appl Chem
70(11):2167–2176
38. Oelgemoller M (2016) Solar photochemical synthesis: from the beginnings of organic photochemistry to the solar manufacturing of commodity chemicals. Chem Rev 116(17):9664–9682
39. da Silva Júnior PE, Amin HIM, Nauth AM, da Silva Emery F, Protti S, Opatz T (2018) Flow photochemistry of azosulfones: application of “sunflow” reactors. ChemPhotoChem 2(10):878–883. https
://doi.org/10.1002/cptc.20180 0125
40. Lipp A, Lahm G, Opatz T (2016) Light induced c-c coupling of 2-chlorobenzazoles with carbamates, alcohols, and ethers. J Org Chem 81(11):4890–4897
41. Lipp B, Nauth AM, Opatz T (2016) Transition-metal-free decarboxylative photoredox coupling of
carboxylic acids and alcohols with aromatic nitriles. J Org Chem 81(15):6875–6882
42. Kim YJ, Jeong MJ, Kim JE, In I, Park CP (2015) Microreactor-mediated benzylic bromination in
concentrated solar radiation. Aust J Chem 68(11):1653–1656
43. Zhao F, Cambié D, Janse J, Wieland EW, Kuijpers KPL, Hessel V, Debije MG, Noël T (2017)
Scale-up of a luminescent solar concentrator-based photomicroreactor via numbering-up. ACS Sustain Chem Eng 6(1):422–429
44. Su Y, Kuijpers K, Hessel V, Noël T (2016) A convenient numbering-up strategy for the scale-up of
gas–liquid photoredox catalysis in flow. React Chem Eng 1(1):73–81
45. Cambié D, Zhao F, Hessel V, Debije MG, Noël T (2017) Every photon counts: understanding and
optimizing photon paths in luminescent solar concentrator-based photomicroreactors (LSC-PMs).
React Chem Eng 2(4):561–566
46. Zhao F, Cambié D, Hessel V, Debije MG, Noël T (2018) Real-time reaction control for solar production of chemicals under fluctuating irradiance. Green Chem 20(11):2459–2464
47. Funken K-H (1991) Solar chemistry: classification, criteria, and identification of R & D deficits.
Solar Energy Mat 24(1–4):370–385
48. Colmenares JC, Varma RS, Nair V (2017) Selective photocatalysis of lignin-inspired chemicals by
integrating hybrid nanocatalysis in microfluidic reactors. Chem Soc Rev 46(22):6675–6686
49. Funken K-H, Müller F-J, Ortner J, Riffelmann K-J, Sattler C (1999) Solar collectors versus lamps—
a comparison of the energy demand of industrial photochemical processes as exemplified by the
production of ε-caprolactam. Energy 24(8):681–687
50. Sattler C, Müller FJ, Riffelmann KJ, Ortner J, Funken KH (1999) Concept and economic evaluation
of an industrial synthesis of ε-caprolactam via solar photooximation of cyclohexane. Le Journal de
Physique IV 09(PR3):723–727
27
Reprinted from the journal
