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1

Riess, Jean G. "Perfluorocarbon-based Oxygen Delivery." Artificial Cells, Blood Substitutes, and Biotechnology 34, no. 6 (2006): 567–80. http://dx.doi.org/10.1080/10731190600973824.

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2

Lewis, Clayton J., and James D. Ross. "Hemoglobin-based oxygen carriers." Journal of Trauma and Acute Care Surgery 77 (September 2014): S216—S221. http://dx.doi.org/10.1097/ta.0000000000000204.

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Sen Gupta, Anirban. "Hemoglobin-based Oxygen Carriers." SHOCK 52 (October 2019): 70–83. http://dx.doi.org/10.1097/shk.0000000000001009.

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4

Silverman, Toby A., and Richard B. Weiskopf. "Hemoglobin-based Oxygen Carriers." Anesthesiology 111, no. 5 (2009): 946–63. http://dx.doi.org/10.1097/aln.0b013e3181ba3c2c.

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5

Gryczynski, Ignacy, Zygmunt Gryczynski, Joseph R. Lakowicz, and Govind Rao. "Polarization-based oxygen sensor." Analyst 124, no. 7 (1999): 1041–44. http://dx.doi.org/10.1039/a900364i.

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6

Stowell, Christopher P. "Hemoglobin-based oxygen carriers." Current Opinion in Hematology 9, no. 6 (2002): 537–43. http://dx.doi.org/10.1097/00062752-200211000-00013.

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7

Weiskopf, Richard B. "Hemoglobin-Based Oxygen Carriers." Anesthesia & Analgesia 119, no. 4 (2014): 758–60. http://dx.doi.org/10.1213/ane.0000000000000401.

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8

Vandegriff, Kim D. "Haemoglobin-based oxygen carriers." Expert Opinion on Investigational Drugs 9, no. 9 (2000): 1967–84. http://dx.doi.org/10.1517/13543784.9.9.1967.

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9

Koehler, Raymond C., Clara Fronticelli, and Enrico Bucci. "Insensitivity of cerebral oxygen transport to oxygen affinity of hemoglobin-based oxygen carriers." Biochimica et Biophysica Acta (BBA) - Proteins and Proteomics 1784, no. 10 (2008): 1387–94. http://dx.doi.org/10.1016/j.bbapap.2008.01.001.

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10

Lin, Haiqing, Meijuan Zhou, Jennifer Ly, et al. "Membrane-Based Oxygen-Enriched Combustion." Industrial & Engineering Chemistry Research 52, no. 31 (2013): 10820–34. http://dx.doi.org/10.1021/ie401464z.

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11

Wu, Jianbo, and Hong Yang. "Platinum-Based Oxygen Reduction Electrocatalysts." Accounts of Chemical Research 46, no. 8 (2013): 1848–57. http://dx.doi.org/10.1021/ar300359w.

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12

Greenburg, A. G., W. R. Light, and G. P. Dubé. "Reconstructing hemoglobin-based oxygen carriers." Transfusion 50, no. 12 (2010): 2764–67. http://dx.doi.org/10.1111/j.1537-2995.2010.02814.x.

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13

Habibagahi, Arezoo, Youssef Mébarki, Yasir Sultan, Glenn P. A. Yap, and Robert J. Crutchley. "Water-Based Oxygen-Sensor Films." ACS Applied Materials & Interfaces 1, no. 8 (2009): 1785–92. http://dx.doi.org/10.1021/am900306a.

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14

Gong, Xiangjie, Anni Li, Junbin Wu, Junying Wang, Congwei Wang, and Junzhong Wang. "Graphene-cobalt based oxygen electrocatalysts." Catalysis Today 358 (December 2020): 184–95. http://dx.doi.org/10.1016/j.cattod.2019.10.027.

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15

Hara, Toru, and Takashi Ishiguro. "SrTiO3-Based Microfabricated Oxygen Sensors." Japanese Journal of Applied Physics 48, no. 9 (2009): 09KA17. http://dx.doi.org/10.1143/jjap.48.09ka17.

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16

Gimenez, Alejandro J., Gabriel Luna-Barcenas, Isaac C. Sanchez, and Jose Martin Yanez-Limon. "Paper-Based ZnO Oxygen Sensor." IEEE Sensors Journal 15, no. 2 (2015): 1246–51. http://dx.doi.org/10.1109/jsen.2014.2361780.

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17

Kamath, K. Poornima, and Prakash Bhajantri. "Zeolite Based Portable Oxygen Concentrator." International Journal for Research in Applied Science and Engineering Technology 11, no. 4 (2023): 844–46. http://dx.doi.org/10.22214/ijraset.2023.50215.

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Abstract: Everyone here has begun to rethink about sustainability and self-sufficiency of oxygen due to the demand for it and the inadequacy brought on by the second wave of the Corona outbreak. For individuals with severe COVID symptoms, medical oxygen therapy is a common treatment. At the global stages, strategies must be made to ensure a steady supply of oxygen to fulfil the escalating demand for the oxygen. A device called an oxygen concentrator can deliver pure oxygen for therapeutic purposes. The issue of hospital bed shortages during the pandemic, which resulted in the deaths of thousan
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18

Standl, T. "Artificial Oxygen Carriers: Hemoglobin-Based Oxygen Carriers – Current Status 2004." Transfusion Medicine and Hemotherapy 31, no. 4 (2004): 262–68. http://dx.doi.org/10.1159/000080412.

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19

Hu, Wenting, Felix Donat, S. A. Scott, and J. S. Dennis. "Kinetics of oxygen uncoupling of a copper based oxygen carrier." Applied Energy 161 (January 2016): 92–100. http://dx.doi.org/10.1016/j.apenergy.2015.10.006.

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20

Duffy, Gregory, Steven Kestel, Matthew Gray, George Lee, Tilo Stahl, and Jim Zhang. "Dissolved Oxygen Control Based on Real Time Oxygen Uptake Rate Estimation." Proceedings of the Water Environment Federation 2010, no. 8 (2010): 7400–7408. http://dx.doi.org/10.2175/193864710798207594.

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21

Kim, Yoon-Chang, Kyong-Hoon Lee, Satoshi Sasaki, Kazuhito Hashimoto, Kazunori Ikebukuro, and Isao Karube. "Photocatalytic Sensor for Chemical Oxygen Demand Determination Based on Oxygen Electrode." Analytical Chemistry 72, no. 14 (2000): 3379–82. http://dx.doi.org/10.1021/ac9911342.

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22

Pakiari, A. H., and K. Eskandari. "Closed shell oxygen–oxygen bonding interaction based on electron density analysis." Journal of Molecular Structure: THEOCHEM 806, no. 1-3 (2007): 1–7. http://dx.doi.org/10.1016/j.theochem.2006.10.008.

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23

OPTIZ, N., and DIETRICH W. LÜBBERS. "Theory and Development of Fluorescence-Based Optochemical Oxygen Sensors: Oxygen Optodes." International Anesthesiology Clinics 25, no. 3 (1987): 177–97. http://dx.doi.org/10.1097/00004311-198702530-00011.

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24

Yan, Heqing, and Juntao Lu. "A solid polymer electrolyte-based oxygen sensor for portable oxygen meters." Field Analytical Chemistry & Technology 1, no. 3 (1997): 175–78. http://dx.doi.org/10.1002/(sici)1520-6521(1997)1:3<175::aid-fact8>3.0.co;2-w.

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25

Schulz, Matthias, Ute Pippardt, Lutz Kiesel, Katrin Ritter, and Ralf Kriegel. "Oxygen permeation of various archetypes of oxygen membranes based on BSCF." AIChE Journal 58, no. 10 (2012): 3195–202. http://dx.doi.org/10.1002/aic.13843.

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26

Swathi, S., B. Jansi Rani, R. Yuvakkumar, et al. "Cobalt-based derivatives oxygen evolution reaction." Applied Nanoscience 11, no. 4 (2021): 1367–78. http://dx.doi.org/10.1007/s13204-021-01782-y.

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27

Huang, Bingyu, Longbin Li, Xiannong Tang, et al. "Pyrolysis-free polymer-based oxygen electrocatalysts." Energy & Environmental Science 14, no. 5 (2021): 2789–808. http://dx.doi.org/10.1039/d1ee00306b.

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This review summarizes the fundamental and recent progress in optimizing pyrolysis-free polymer-based oxygen electrocatalysts with clear structure–performance relationships. The challenges and future directions in this field are also discussed.
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28

Spirin, Alexey, Alexandr Lipilin, Victor Ivanov, et al. "Solid Oxide Electrolyte Based Oxygen Pump." Advances in Science and Technology 65 (October 2010): 257–62. http://dx.doi.org/10.4028/www.scientific.net/ast.65.257.

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The method of electrochemical extraction of oxygen from air employing a solid oxide electrolyte (SOE) is presented. The prototype of electrochemical oxygen generator (pump) for medical applications has been developed and fabricated. It is based on thin-walled tubular segments of YSZ electrolyte (170 μm) with LSM based electrodes (~20 μm). Different technologies: nanopowder production by laser ablation, casting of polymer-ceramic tapes, formation of electrodes-electrolyte green structures by radial magnetic pulsed compaction followed by cosintering at 1200°C, were used for segments fabrication.
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29

Chaykun, A. M., and O. B. Yumashev. "Rubbers Based on Oxygen-Containing Fluororubbers." Kauchuk i Rezina 80, no. 4 (2021): 192–98. http://dx.doi.org/10.47664/0022-9466-2021-80-4-192-198.

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30

He, Yanling, Xiaoqing Hu, Muxian Xu, Alan Man Ching Ng, and Aleksandra B. Djurišić. "Mesoporous silica nanosphere-based oxygen scavengers." Microporous and Mesoporous Materials 327 (November 2021): 111426. http://dx.doi.org/10.1016/j.micromeso.2021.111426.

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31

Penso, Camila M., João L. Rocha, Marcos S. Martins, et al. "PtOEP–PDMS-Based Optical Oxygen Sensor." Sensors 21, no. 16 (2021): 5645. http://dx.doi.org/10.3390/s21165645.

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The advanced and widespread use of microfluidic devices, which are usually fabricated in polydimethylsiloxane (PDMS), requires the integration of many sensors, always compatible with microfluidic fabrication processes. Moreover, current limitations of the existing optical and electrochemical oxygen sensors regarding long-term stability due to sensor degradation, biofouling, fabrication processes and cost have led to the development of new approaches. Thus, this manuscript reports the development, fabrication and characterization of a low-cost and highly sensitive dissolved oxygen optical senso
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32

Ruiz-González, Rubén, Renzo Zanocco, Yasser Gidi, Antonio L. Zanocco, Santi Nonell, and Else Lemp. "Naphthoxazole-Based Singlet Oxygen Fluorescent Probes." Photochemistry and Photobiology 89, no. 6 (2013): 1427–32. http://dx.doi.org/10.1111/php.12106.

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33

Czechowski, Nikodem, Agnieszka Nowak-Król, Daniel T. Gryko, and Sebastian Maćkowski. "All-optical corrole-based oxygen sensor." Physica Scripta T157 (November 1, 2013): 014009. http://dx.doi.org/10.1088/0031-8949/2013/t157/014009.

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34

Rabinovici, Reuven, Lewis F. Neville, Alan S. Rudolph, and Giora Feuerstein. "Hemoglobin-based oxygen-carrying resuscitation fluids." Critical Care Medicine 23, no. 5 (1995): 801–4. http://dx.doi.org/10.1097/00003246-199505000-00004.

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35

Bone, H. G. "Hemoglobin-based Oxygen Carriers in Sepsis." ains · Anästhesiologie · Intensivmedizin · Notfallmedizin · Schmerztherapie 36, Suppl 2 (2001): 114–16. http://dx.doi.org/10.1055/s-2001-18179.

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36

Zhang, Xiao-Dong, Jian-Jun Li, and Xin Guo. "Oxygen pump based on stabilized zirconia." Review of Scientific Instruments 86, no. 11 (2015): 115103. http://dx.doi.org/10.1063/1.4934860.

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37

Yang, Bowen, Yu Chen, and Jianlin Shi. "Reactive Oxygen Species (ROS)-Based Nanomedicine." Chemical Reviews 119, no. 8 (2019): 4881–985. http://dx.doi.org/10.1021/acs.chemrev.8b00626.

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38

Evtuguin, D. V., J. P. Andreolety, and A. Gandini. "Polyurethanes based on oxygen-organosolv lignin." European Polymer Journal 34, no. 8 (1998): 1163–69. http://dx.doi.org/10.1016/s0014-3057(97)00245-0.

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39

Baldini, F., M. Bacci, F. Cosi, and A. Del Bianco. "Absorption-based optical-fibre oxygen sensor." Sensors and Actuators B: Chemical 7, no. 1-3 (1992): 752–57. http://dx.doi.org/10.1016/0925-4005(92)80398-h.

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40

Fitzpatrick, Colleen M., and Jeffrey D. Kerby. "Blood Substitutes: Hemoglobin-Based Oxygen Carriers." Oral and Maxillofacial Surgery Clinics of North America 17, no. 3 (2005): 261–66. http://dx.doi.org/10.1016/j.coms.2005.04.002.

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41

Lu, Chien-Yuan, Sheng-Po Chang, Shoou-Jinn Chang, et al. "ZnO Nanowire-Based Oxygen Gas Sensor." IEEE Sensors Journal 9, no. 4 (2009): 485–89. http://dx.doi.org/10.1109/jsen.2009.2014425.

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42

Moore, Christine M., Shelley D. Minteer, and R. Scott Martin. "Microchip-based ethanol/oxygen biofuel cell." Lab on a Chip 5, no. 2 (2005): 218. http://dx.doi.org/10.1039/b412719f.

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43

Soykal, I. Ilgaz, Paul H. Matter, Lora B. Thrun, Richard Q. Long, Scott L. Swartz, and Umit S. Ozkan. "Amperometric NOxSensor Based on Oxygen Reduction." IEEE Sensors Journal 16, no. 6 (2016): 1532–40. http://dx.doi.org/10.1109/jsen.2015.2498544.

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44

Ekinci, Kübra, and Şeniz Ertuğrul. "Model Based Diagnosis of Oxygen Sensors." IFAC-PapersOnLine 52, no. 5 (2019): 185–90. http://dx.doi.org/10.1016/j.ifacol.2019.09.030.

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45

OKAMOTO, Yukihiro, Shigenori SUGISAKI, Keishi SUGA, and Hiroshi UMAKOSHI. "Development of Time-course Oxygen Binding Analysis for Hemoglobin-based Oxygen Carriers." Analytical Sciences 33, no. 8 (2017): 953–56. http://dx.doi.org/10.2116/analsci.33.953.

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46

WANG, Kun, Qing-Bo YU, Hua-Qing XIE, Qin QIN, and Jiu-Chong LI. "Properties of Cu-based Oxygen Carrier Used for Chemical Looping Oxygen Production." Journal of Inorganic Materials 28, no. 10 (2013): 1115–20. http://dx.doi.org/10.3724/sp.j.1077.2013.13008.

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47

Hughes, George, Edward Jacobs, Betty Yancey, et al. "HEMOGLOBIN-BASED OXYGEN CARRIER PRESERVES OXYGEN DELIVERY AND EXERCISE CAPACITY IN HUMANS." Critical Care Medicine 23, Supplement (1995): A86. http://dx.doi.org/10.1097/00003246-199501001-00130.

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48

Mandal, P., and S. Chaudhary. "Calculation of inspired oxygen fraction during anaesthesia based on awake oxygen saturation." Anaesthesia 49, no. 8 (1994): 726–28. http://dx.doi.org/10.1111/j.1365-2044.1994.tb04411.x.

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Nishikami, Yuki, Toshihiro Konishi, Ryo Omoda, Yuichi Aihara, Kenichi Oyaizu, and Hiroyuki Nishide. "Oxygen-enriched electrolytes based on perfluorochemicals for high-capacity lithium–oxygen batteries." Journal of Materials Chemistry A 3, no. 20 (2015): 10845–50. http://dx.doi.org/10.1039/c5ta02219c.

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50

Shulman, Alexander, Erik Cleverstam, Tobias Mattisson, and Anders Lyngfelt. "Chemical – Looping with oxygen uncoupling using Mn/Mg-based oxygen carriers – Oxygen release and reactivity with methane." Fuel 90, no. 3 (2011): 941–50. http://dx.doi.org/10.1016/j.fuel.2010.11.044.

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