Topics in Current Chemistry (2019) 377:2
1 3
83. Tomaszewski B, Schmid A, Buehler K (2014) Biocatalytic production of catechols using a high
pressure tube‑in‑tube segmented flow reactor. Org Process Res Dev 18:1516–1526
84. Yang L, Jensen KF (2013) Mass transport and reactions in the tube‑in‑tube reactor. Org Process
Res Dev 17:927–933
85. Wu G, Constantinou A, Cao E, Kuhn S, Morad M, Sankar M, Bethell D, Hutchings GJ, Gavriilidis
A (2015) Continuous heterogeneously catalyzed oxidation of benzyl alcohol using a tube‑in‑tube
membrane microreactor. Ind Eng Chem Res 54:4183–4189
86. Constantinou A, Wu G, Corredera A, Ellis P, Bethell D, Hutchings GJ, Kuhn S, Gavriilidis A
(2015) Continuous heterogeneously catalyzed oxidation of benzyl alcohol in a ceramic membrane
packed‑bed reactor. Org Process Res Dev 19:1973–1979
87. Wu G, Cao E, Ellis P, Constantinou A, Kuhn S, Gavriilidis A (2018) Development of a flat mem‑
brane microchannel packed‑bed reactor for scalable aerobic oxidation of benzyl alcohol in flow.
Chem Eng J 1–9
88. Greene JF, Preger Y, Stahl SS, Root TW (2015) PTFE‑membrane flow reactor for aerobic oxida‑
tion reactions and its application to alcohol oxidation. Org Process Res Dev 19:858–864
89. Park CP, Kim DP (2010) Dual‑channel microreactor for gas‑liquid syntheses. J Am Chem Soc
132:10102–10106
90. Park CP, Maurya RA, Lee JH, Kim DP (2011) Efficient photosensitized oxygenations in phase con‑
tact enhanced microreactors. Lab Chip 11:1941–1945
91. Maurya RA, Park CP, Kim DP (2011) Triple‑channel microreactor for biphasic gas‑liquid reac‑
tions: photosensitized oxygenations. Beilstein J Org Chem 7:1158–1163
92. Ogilby PR (2010) Singlet oxygen: there is indeed something new under the sun. Chem Soc Rev
39:3181–3209
93. Ghogare AA, Greer A (2016) Using singlet oxygen to synthesize natural products and drugs. Chem
Rev 116:9994–10034
94. Knowles JP, Elliott LD, Booker‑Milburn KI (2012) Flow photochemistry: old light through new
windows. Beilstein J Org Chem 8:2025–2052
95. Su Y, Straathof NJW, Hessel V, Noël T (2014) Photochemical transformations accelerated in con‑
tinuous‑flow reactors: basic concepts and applications. Chem Eur J 20:10562–10589
96. Cambié D, Bottecchia C, Straathof NJW, Hessel V, Noël T (2016) Applications of continuous‑
flow photochemistry in organic synthesis, material science, and water treatment. Chem Rev
116:10276–10341
97. Lévesque F, Seeberger PH (2011) Highly efficient continuous flow reactions using singlet oxygen
as a “Green” reagent. Org Lett 13:5008–5011
98. Lévesque F, Seeberger PH (2012) Continuous‑flow synthesis of the anti‑malaria drug artemisinin.
Angew Chem Int Ed 51:1706–1709
99. Kopetzki D, Lévesque F, Seeberger PH (2013) A continuous‑flow process for the synthesis of arte‑
misinin. Chem Eur J 19:5450–5456
100. Loponov KN, Lopes J, Barlog M, Astrova EV, Malkov AV, Lapkin AA (2014) Optimiza‑
tion of a scalable photochemical reactor for reactions with singlet oxygen. Org Process Res Dev
18:1443–1454
101. 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 1:73–81
102. Laudadio G, Govaerts S, Wang Y, Ravelli D, Koolman HF, Fagnoni M, Djuric SW, Noël T (2018)
Selective C(sp
3 )–H aerobic oxidation enabled by decatungstate photocatalysis in flow. Angew
Chem Int Ed 57:4078–4082
103. Yoshida J, Kataoka K, Horcajada R, Nagaki A (2008) Modern strategies in electroorganic synthe‑
sis. Chem Rev 108:2265–2299
104. Horn EJ, Rosen BR, Baran PS (2016) Synthetic organic electrochemistry: an enabling and innately
sustainable method. ACS Cent Sci 2:302–308
105. Folgueiras‑Amador AA, Wirth T (2017) Perspectives in flow electrochemistry. J Flow Chem
7:94–95
106. Atobe M, Tateno H, Matsumura Y (2018) Applications of flow microreactors in electrosynthetic
processes. Chem Rev 118:4541–4572
107. Pletcher D, Green RA, Brown RCD (2018) Flow electrolysis cells for the synthetic organic chemis‑
try laboratory. Chem Rev 118:4573–4591
108. Mo Y, Jensen KF (2018) Continuous N‑hydroxyphthalimide (NHPI)‑mediated electrochemical
aerobic oxidation of benzylic C‑H bonds. Chem Eur J 24:10260–10265
108
Reprinted from the journal
1 3
83. Tomaszewski B, Schmid A, Buehler K (2014) Biocatalytic production of catechols using a high
pressure tube‑in‑tube segmented flow reactor. Org Process Res Dev 18:1516–1526
84. Yang L, Jensen KF (2013) Mass transport and reactions in the tube‑in‑tube reactor. Org Process
Res Dev 17:927–933
85. Wu G, Constantinou A, Cao E, Kuhn S, Morad M, Sankar M, Bethell D, Hutchings GJ, Gavriilidis
A (2015) Continuous heterogeneously catalyzed oxidation of benzyl alcohol using a tube‑in‑tube
membrane microreactor. Ind Eng Chem Res 54:4183–4189
86. Constantinou A, Wu G, Corredera A, Ellis P, Bethell D, Hutchings GJ, Kuhn S, Gavriilidis A
(2015) Continuous heterogeneously catalyzed oxidation of benzyl alcohol in a ceramic membrane
packed‑bed reactor. Org Process Res Dev 19:1973–1979
87. Wu G, Cao E, Ellis P, Constantinou A, Kuhn S, Gavriilidis A (2018) Development of a flat mem‑
brane microchannel packed‑bed reactor for scalable aerobic oxidation of benzyl alcohol in flow.
Chem Eng J 1–9
88. Greene JF, Preger Y, Stahl SS, Root TW (2015) PTFE‑membrane flow reactor for aerobic oxida‑
tion reactions and its application to alcohol oxidation. Org Process Res Dev 19:858–864
89. Park CP, Kim DP (2010) Dual‑channel microreactor for gas‑liquid syntheses. J Am Chem Soc
132:10102–10106
90. Park CP, Maurya RA, Lee JH, Kim DP (2011) Efficient photosensitized oxygenations in phase con‑
tact enhanced microreactors. Lab Chip 11:1941–1945
91. Maurya RA, Park CP, Kim DP (2011) Triple‑channel microreactor for biphasic gas‑liquid reac‑
tions: photosensitized oxygenations. Beilstein J Org Chem 7:1158–1163
92. Ogilby PR (2010) Singlet oxygen: there is indeed something new under the sun. Chem Soc Rev
39:3181–3209
93. Ghogare AA, Greer A (2016) Using singlet oxygen to synthesize natural products and drugs. Chem
Rev 116:9994–10034
94. Knowles JP, Elliott LD, Booker‑Milburn KI (2012) Flow photochemistry: old light through new
windows. Beilstein J Org Chem 8:2025–2052
95. Su Y, Straathof NJW, Hessel V, Noël T (2014) Photochemical transformations accelerated in con‑
tinuous‑flow reactors: basic concepts and applications. Chem Eur J 20:10562–10589
96. Cambié D, Bottecchia C, Straathof NJW, Hessel V, Noël T (2016) Applications of continuous‑
flow photochemistry in organic synthesis, material science, and water treatment. Chem Rev
116:10276–10341
97. Lévesque F, Seeberger PH (2011) Highly efficient continuous flow reactions using singlet oxygen
as a “Green” reagent. Org Lett 13:5008–5011
98. Lévesque F, Seeberger PH (2012) Continuous‑flow synthesis of the anti‑malaria drug artemisinin.
Angew Chem Int Ed 51:1706–1709
99. Kopetzki D, Lévesque F, Seeberger PH (2013) A continuous‑flow process for the synthesis of arte‑
misinin. Chem Eur J 19:5450–5456
100. Loponov KN, Lopes J, Barlog M, Astrova EV, Malkov AV, Lapkin AA (2014) Optimiza‑
tion of a scalable photochemical reactor for reactions with singlet oxygen. Org Process Res Dev
18:1443–1454
101. 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 1:73–81
102. Laudadio G, Govaerts S, Wang Y, Ravelli D, Koolman HF, Fagnoni M, Djuric SW, Noël T (2018)
Selective C(sp
3 )–H aerobic oxidation enabled by decatungstate photocatalysis in flow. Angew
Chem Int Ed 57:4078–4082
103. Yoshida J, Kataoka K, Horcajada R, Nagaki A (2008) Modern strategies in electroorganic synthe‑
sis. Chem Rev 108:2265–2299
104. Horn EJ, Rosen BR, Baran PS (2016) Synthetic organic electrochemistry: an enabling and innately
sustainable method. ACS Cent Sci 2:302–308
105. Folgueiras‑Amador AA, Wirth T (2017) Perspectives in flow electrochemistry. J Flow Chem
7:94–95
106. Atobe M, Tateno H, Matsumura Y (2018) Applications of flow microreactors in electrosynthetic
processes. Chem Rev 118:4541–4572
107. Pletcher D, Green RA, Brown RCD (2018) Flow electrolysis cells for the synthetic organic chemis‑
try laboratory. Chem Rev 118:4573–4591
108. Mo Y, Jensen KF (2018) Continuous N‑hydroxyphthalimide (NHPI)‑mediated electrochemical
aerobic oxidation of benzylic C‑H bonds. Chem Eur J 24:10260–10265
108
Reprinted from the journal
