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Document DE102016204541A1 (Pages: 17)

Bibliographic data Document DE102016204541A1 (Pages: 17)
INID Criterion Field Contents
54 Title TI [DE] Verfahren und Vorrichtung zur zeitlichen und lokal aufgelösten Detektion von Stoffkonzentration in Fluiden
71/73 Applicant/owner PA Technische Universität Dresden, 01069, Dresden, DE
72 Inventor IN Franke, Markus, 01277, Dresden, DE ; Körbitz, René, 01454, Radeberg, DE ; Richter, Andreas, Prof. Dr., 01219, Dresden, DE
22/96 Application date AD Mar 18, 2016
21 Application number AN 102016204541
Country of application AC DE
Publication date PUB Sep 21, 2017
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Priority data PRC
PRN
PRD


51 IPC main class ICM G01N 21/62 (2006.01)
51 IPC secondary class ICS G01N 21/64 (2006.01)
G01N 21/77 (2006.01)
G01N 33/48 (2006.01)
IPC additional class ICA
IPC index class ICI
Cooperative patent classification CPC G01N 2021/7723
G01N 2021/7773
G01N 2021/7783
G01N 21/77
MCD main class MCM G01N 21/62 (2006.01)
MCD secondary class MCS G01N 21/64 (2006.01)
G01N 21/77 (2006.01)
G01N 33/48 (2006.01)
MCD additional class MCA
57 Abstract AB [DE] Die Erfindung betrifft ein Verfahren und eine Vorrichtung zur zeitlichen und lokal aufgelösten Detektion von Stoffkonzentration in Fluiden.
56 Cited documents identified in the search CT AT000000409552B
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DE102006026668B4
DE102006027051B4
DE102006037420A1
DE102011118619A1
DE102015219142B3
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US020070140911A1
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US020150344931A1
WO002003100469A2
WO002007136390A1
WO002017006122A1
56 Cited documents indicated by the applicant CT
56 Cited non-patent literature identified in the search CTNP Alexeev, V. L.; Das, S.; Finegold, D. N.; Asher, S. A.: Photonic Crystal Glucose-Sensing Material for Noninvasive Monitoring of Glucose in Tear Fluid. In: Clinical Chem., 2004, Vol. 50, No. 12, Seiten 2353 ? 2360 n;
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Fels, J.; Orlov, S. N.; Grygorczyk, R.: The Hydrogel Nature of Mammalian Cytoplasm Contributes to Osmosensing and Extracellular pH Sensing. In: Biophys. J., Vol. 96, May 2009, Seiten 4276 – 4285 0;
Fels, J.; Orlov, S. N.; Grygorczyk, R.: The Hydrogel Nature of Mammalian Cytoplasm Contributes to Osmosensing and Extracellular pH Sensing. In: Biophys. J., Vol. 96, May 2009, Seiten 4276 ? 4285 n;
Gawel, K.; Barriet, D.; Sletmoen, M.; Stokke, B. T.: Responsive Hydrogels for Label-Free Signal Transduction within Biosensors. In: Sensors, 2010, Vol. 10, Seiten 4381 ? 4409 n;
Hadjiloucas, S.; Keating, D. A.; Usher, M. J.; Michie, W. C.; Culshaw, B.; Konstantaki, M.; Graham, N. B.; Moran, C. R.: Hydrogel based distributed fibre optic sensor for measuring soil salinity and soil water potentials. In: Proc. IEE Colloq. Progress Fibre Optic Sensors Appl., 1995, Seiten 9/1-6, publ. by: IEE, London, UK p 0;
Hu, X.; Li, G.; Li, M.; Huang, J.; Li, Y.; Gao, Y.; Zhang, Y.: Ultrasensitive Specific Stimulant Assay Based on Molecularly Imprinted Photonic Hydrogels. In: Adv. Funct. Mat., 2008, Vol. 18, Seiten 575 ? 583 n;
Larsen, M.; Borisov, S. M.; Grunwald, B.; Klimant, I.; Glud, R. N.: A simple and inexpensive high resolution color ratiometric planar optode imaging approach: application to oxygen and pH sensing. In: Limnol. Oceanogr. Methods, Vol. 9, 2011, Seiten 348 -360 p 0;
Lee, K.; Asher, S. A.: Photonic Crystal Chemical Sensors: pH and Ionic Strength. In: J. Am. Chem. Soc., 2000, Vol. 122, Seiten 9534 ? 9537 n;
Lee, Y.-J.; Pruzinsky, S. A.; Braun, A. V.: Glucose-Sensitive Inverse Opal Hydrogels: Analysis of Optical Diffraction Response. In: Langmuir, 2004, Vol. 20, Seiten 3096 ? 3106 n;
Marschall, A. J.; Young, D. S.; Kabilan, S.; Hussain, A.; Blyth, J.; Lowe, C. R.: Holographic sensors for the determination of ionic strength. In: Analyt. Chim. Acta, 2004, Vol. 527, Seiten 13 - 20 n;
Richter, A.; Türke, A.; Pich, A: Controlled Double-Sensitivity of Microgels Applied to Electronically Adjustable Chemostats. In: Adv. Mater., Vol. 19, 2007, Seiten 1109 - 1112 p 0;
Sharma, A. C.; Jana, T.; Kesavamoorthy, R.; Shi, L.; Virji, M. A.; Finegold, D. N.; Asher, S. A.: A General Photonic Crystal Sensing Motif: Creatinine in Bodily Fluids. In: J. Am. Chem. Soc., 2004, Vol. 126, Seiten 2971 ? 2977 n;
Wencel, D.; Abel, T.; McDonagh, C.: Optical Chemical pH Sensors. In: Anal. Chem., Vol. 86, No. 1, 2014, Seiten 15 – 29 0;
Wencel, D.; Abel, T.; McDonagh, C.: Optical Chemical pH Sensors. In: Anal. Chem., Vol. 86, No. 1, 2014, Seiten 15 ? 29 n;
Wu, Z.; Hu, X.; Tao, C.-an, Li, Y.; Liu, J.; Yang, C.; Shen, D.; Li, G.: Direct and label-free detection of cholic acid based on molecularly imprinted photonic hydrogels. In: J. Mat. Chem., 2008, Vol. 18, Seiten 5452 ? 5458 n;
Zhao, S.-P.; Cao, M.-J.; Li, L.-Y.; Xu, W.-L.: Synthesis and Properties of Photopolymerized pH-Sensitive Hydrogels of Methacrylic Acid and Biodegradable PEG-b-PCL Macromer. In: Iranian Polym. J., Vol. 20, No. 4, 2011, Seiten 329 - 340 p 0
56 Cited non-patent literature indicated by the applicant CTNP A. Richter, A. Türke, A. Pich, Adv. Mater. 2007, 19, 1109–1112 1;
Larsen, et al. „A simple and inexpensive high resolution color ratiometric planar optode imaging approach: application to oxygen and pH sensing“ (Limnol. Oceanogr.: Methods, 2011, 9) 1;
Wencel, et al. (Anal. Chem., 2014, 86 (1), 15–29) 1
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Sequence listings
Search file IPC ICP G01N 21/62
G01N 21/64
G01N 33/48