354. Sampson NS, Mrksich M, Bertozzi CR (2000) Surface molecular recognition. Proc Nat Acad Sci
USA 98:2000–2001
355. Aprile A, Ciuchi F, Pinalli R et al (2016) Probing molecular recognition at the solid-gas interface by
sum-frequency vibrational spectroscopy. J Phys Chem Lett 7:3022–3026. doi:10.1021/acs.jpclett.
6b01300
356. Rodrigo D, Limaj O, Janner D et al (2016) Mid-infrared plasmonic biosensing with graphene.
Science 349:165–168. doi:10.1017/CBO9781107415324.004
357. Wu C, Khanikaev AB, Adato R et al (2012) Fano-resonant asymmetric metamaterials for ultrasensitive spectroscopy and identification of molecular monolayers. Nat Mater 11:69–75. doi:10.
1038/nmat3161
358. Adato R, Aksu S, Altug H (2015) Engineering mid-infrared nanoantennas for surface enhanced
infrared absorption spectroscopy. Mater Today 18:436–446. doi:10.1016/j.mattod.2015.03.001
359. Huck C, Vogt J, Sendner M et al (2015) Plasmonic enhancement of infrared vibrational signals:
nanoslits versus nanorods. ACS Photonics 2:1489–1497. doi:10.1021/acsphotonics.5b00390
360. Li M, Cushing SK, Wu N (2015) Plasmon-enhanced optical sensors: a review. Analyst
140:386–406. doi:10.1039/c4an01079e
361. Huck C, Neubrech F, Vogt J et al (2014) Surface-enhanced infrared spectroscopy using nanometersized gaps. ACS Nano 8:4908–4914
362. Adato R, Altug H (2013) In-situ ultra-sensitive infrared absorption spectroscopy of biomolecule
interactions in real time with plasmonic nanoantennas. Nat Commun 4:2154. doi:10.1038/
ncomms3154
363. Howes PD, Chandrawati R, Stevens MM (2014) Colloidal nanoparticles as advanced biological
sensors. Science (80-) 346:1247390–1–1247390–10. doi:10.1016/0250-6874(86)80002-6
364. Cheng F, Yang X, Gao J (2015) Ultrasensitive detection and characterization of molecules with
infrared plasmonic metamaterials. Sci Rep 5:14327. doi:10.1038/srep14327
365. Betzig E, Trautman JK (1992) Near-field optics: microscopy, spectroscopy, and surface modification beyond the diffraction limit. Science 257:189–195. doi:10.1126/science.257.5067.189
366. Hell SW, Wichmann J (1994) Breaking the diffraction resolution limit by stimulated-emission -
stimulated-emission-depletion fluorescence microscopy. Opt Lett 19:780–782. doi:10.1364/OL.19.
000780
367. Courjon D, Bainier C (1999) Near field microscopy and near field optics. Reports Prog Phys
57:989–1028. doi:10.1088/0034-4885/57/10/002
368. Schuller JA, Barnard ES, Cai W et al (2010) Plasmonics for extreme light concentration and
manipulation. Nat Mater 9:193–204. doi:10.1038/nmat2630
369. Kravtsov V, Ulbricht R, Atkin JM, Raschke MB (2016) Plasmonic nanofocused four-wave mixing
for femtosecond near-field imaging. Nat Nanotechnol 11:1–7. doi:10.1038/nnano.2015.336
370. Centrone A (2015) Infrared imaging and spectroscopy beyond the diffraction limit. Annu Rev Anal
Chem 8:101–126. doi:10.1146/annurev-anchem-071114-040435
371. Centrone A, Lahiri B, Holland G (2013) Chemical imaging beyond the diffraction limit using
photothermal induced resonance microscopy. 27:6–9
372. Keilmann F, Hillenbrand R (2004) Near-field microscopy by elastic light scattering from a tip.
Philos Trans A Math Phys Eng Sci 362:787–805. doi:10.1098/rsta.2003.1347
373. Atkin JM, Sass PM, Teichen PE, et al (2015) Nanoscale probing of dynamics in local molecular
environments. J Phys Chem Lett. acs.jpclett.5b02093. doi:10.1021/acs.jpclett.5b02093
374. Xu XG, Raschke MB (2013) Near-field infrared vibrational dynamics and tip-enhanced decoherence. Nano Lett 13:1588–1595. doi:10.1021/nl304804p
375. Kim SK, Wang J-K, Zewail AH (1994) Femtosecond pH jump: dynamics of acid—base reactions in
solvent cages. Chem Phys Lett 228:369–378. doi:10.1016/0009-2614(94)00951-1
376. Donten ML, Hassan S, Popp A et al (2015) pH-Jump induced leucine zipper folding beyond the
diffusion limit. J Phys Chem B 119:1425–1432. doi:10.1021/jp511539c
377. Kohse S, Neubauer A, Pazidis A et al (2013) Photoswitching of enzyme activity by laser-induced
pH-jump. J Am Chem Soc 135:9407–9411. doi:10.1021/ja400700x
378. Nunes RMD, Pineiro M, Arnaut LG (2009) Photoacid for extremely long-lived and reversible pHjumps. J Am Chem Soc 131:9456–9462. doi:10.1021/ja901930c
379. Donten ML, Hamm P (2011) PH-Jump overshooting. J Phys Chem Lett 2:1607–1611. doi:10.1021/
jz200610n
380. Genosar L, Cohen B, Huppert D (2000) Ultrafast direct photoacid-base reaction. J Phys Chem A
104:6689–6698. doi:10.1021/jp000317l
Top Curr Chem (Z) (2017) 375:86
123
204
Reprinted from the journal
USA 98:2000–2001
355. Aprile A, Ciuchi F, Pinalli R et al (2016) Probing molecular recognition at the solid-gas interface by
sum-frequency vibrational spectroscopy. J Phys Chem Lett 7:3022–3026. doi:10.1021/acs.jpclett.
6b01300
356. Rodrigo D, Limaj O, Janner D et al (2016) Mid-infrared plasmonic biosensing with graphene.
Science 349:165–168. doi:10.1017/CBO9781107415324.004
357. Wu C, Khanikaev AB, Adato R et al (2012) Fano-resonant asymmetric metamaterials for ultrasensitive spectroscopy and identification of molecular monolayers. Nat Mater 11:69–75. doi:10.
1038/nmat3161
358. Adato R, Aksu S, Altug H (2015) Engineering mid-infrared nanoantennas for surface enhanced
infrared absorption spectroscopy. Mater Today 18:436–446. doi:10.1016/j.mattod.2015.03.001
359. Huck C, Vogt J, Sendner M et al (2015) Plasmonic enhancement of infrared vibrational signals:
nanoslits versus nanorods. ACS Photonics 2:1489–1497. doi:10.1021/acsphotonics.5b00390
360. Li M, Cushing SK, Wu N (2015) Plasmon-enhanced optical sensors: a review. Analyst
140:386–406. doi:10.1039/c4an01079e
361. Huck C, Neubrech F, Vogt J et al (2014) Surface-enhanced infrared spectroscopy using nanometersized gaps. ACS Nano 8:4908–4914
362. Adato R, Altug H (2013) In-situ ultra-sensitive infrared absorption spectroscopy of biomolecule
interactions in real time with plasmonic nanoantennas. Nat Commun 4:2154. doi:10.1038/
ncomms3154
363. Howes PD, Chandrawati R, Stevens MM (2014) Colloidal nanoparticles as advanced biological
sensors. Science (80-) 346:1247390–1–1247390–10. doi:10.1016/0250-6874(86)80002-6
364. Cheng F, Yang X, Gao J (2015) Ultrasensitive detection and characterization of molecules with
infrared plasmonic metamaterials. Sci Rep 5:14327. doi:10.1038/srep14327
365. Betzig E, Trautman JK (1992) Near-field optics: microscopy, spectroscopy, and surface modification beyond the diffraction limit. Science 257:189–195. doi:10.1126/science.257.5067.189
366. Hell SW, Wichmann J (1994) Breaking the diffraction resolution limit by stimulated-emission -
stimulated-emission-depletion fluorescence microscopy. Opt Lett 19:780–782. doi:10.1364/OL.19.
000780
367. Courjon D, Bainier C (1999) Near field microscopy and near field optics. Reports Prog Phys
57:989–1028. doi:10.1088/0034-4885/57/10/002
368. Schuller JA, Barnard ES, Cai W et al (2010) Plasmonics for extreme light concentration and
manipulation. Nat Mater 9:193–204. doi:10.1038/nmat2630
369. Kravtsov V, Ulbricht R, Atkin JM, Raschke MB (2016) Plasmonic nanofocused four-wave mixing
for femtosecond near-field imaging. Nat Nanotechnol 11:1–7. doi:10.1038/nnano.2015.336
370. Centrone A (2015) Infrared imaging and spectroscopy beyond the diffraction limit. Annu Rev Anal
Chem 8:101–126. doi:10.1146/annurev-anchem-071114-040435
371. Centrone A, Lahiri B, Holland G (2013) Chemical imaging beyond the diffraction limit using
photothermal induced resonance microscopy. 27:6–9
372. Keilmann F, Hillenbrand R (2004) Near-field microscopy by elastic light scattering from a tip.
Philos Trans A Math Phys Eng Sci 362:787–805. doi:10.1098/rsta.2003.1347
373. Atkin JM, Sass PM, Teichen PE, et al (2015) Nanoscale probing of dynamics in local molecular
environments. J Phys Chem Lett. acs.jpclett.5b02093. doi:10.1021/acs.jpclett.5b02093
374. Xu XG, Raschke MB (2013) Near-field infrared vibrational dynamics and tip-enhanced decoherence. Nano Lett 13:1588–1595. doi:10.1021/nl304804p
375. Kim SK, Wang J-K, Zewail AH (1994) Femtosecond pH jump: dynamics of acid—base reactions in
solvent cages. Chem Phys Lett 228:369–378. doi:10.1016/0009-2614(94)00951-1
376. Donten ML, Hassan S, Popp A et al (2015) pH-Jump induced leucine zipper folding beyond the
diffusion limit. J Phys Chem B 119:1425–1432. doi:10.1021/jp511539c
377. Kohse S, Neubauer A, Pazidis A et al (2013) Photoswitching of enzyme activity by laser-induced
pH-jump. J Am Chem Soc 135:9407–9411. doi:10.1021/ja400700x
378. Nunes RMD, Pineiro M, Arnaut LG (2009) Photoacid for extremely long-lived and reversible pHjumps. J Am Chem Soc 131:9456–9462. doi:10.1021/ja901930c
379. Donten ML, Hamm P (2011) PH-Jump overshooting. J Phys Chem Lett 2:1607–1611. doi:10.1021/
jz200610n
380. Genosar L, Cohen B, Huppert D (2000) Ultrafast direct photoacid-base reaction. J Phys Chem A
104:6689–6698. doi:10.1021/jp000317l
Top Curr Chem (Z) (2017) 375:86
123
204
Reprinted from the journal
