Academic literature on the topic 'Biophysical Laboratory'

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Journal articles on the topic "Biophysical Laboratory"

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Gango, Sergei, Svetlana Pan'kova, Vladimir Solovyev, Alexander Vanin, and Mikhail Yanikov. "TEACHING METHODS IN THE UNIVERSITY COURSE “BIOPHYSICS”." SOCIETY. INTEGRATION. EDUCATION. Proceedings of the International Scientific Conference 1 (May 25, 2018): 103. http://dx.doi.org/10.17770/sie2018vol1.3206.

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The article presents some methods and results of experimental teaching biophysics at Pskov State University (Russian Federation). The goal of any university is to train highly qualified specialists. To achieve this aim, the authors suggest following interdisciplinary approach to the educational process. Some topics of the lecture presentations, video clips and demonstration educational experiments as well as examples of computer modelling of biophysical processes are considered. Subjects of the real and virtual biophysical, biological and medical experimental tasks for students working in an e
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Mantilla, Alexander B. C., and Nathan J. Kuwada. "A Flexible Laboratory Exercise Introducing Practical Aspects of Mean Squared Displacement." Biophysicist 2, no. 1 (2021): 126–36. http://dx.doi.org/10.35459/tbp.2020.000157.

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ABSTRACT Mean squared displacement is a standard biophysical tool for characterizing the motion of particles in a thermally dominated environment, yet it is rarely formally introduced or discussed in undergraduate curriculum. Here, we provide a flexible and adaptable experimental or computational lab activity that provides a practical introduction to mean squared displacement and anomalous diffusion that includes optional experimental protocols and computational simulation techniques for data collection and discusses a variety of analysis techniques. This lab activity has been implemented both
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Hundzinski, Anne M., and Bruce D. Anderson. "Resonance Energy Transfer in Peptides: A Biophysical Laboratory Experiment." Journal of Chemical Education 76, no. 3 (1999): 416. http://dx.doi.org/10.1021/ed076p416.

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Varakin, A. I., V. V. Mazur, N. V. Arkhipova, and Yu V. Seryanov. "Simulation methods in biophysical pharmacokinetics." Biomedical Engineering 41, no. 3 (2007): 103–7. http://dx.doi.org/10.1007/s10527-007-0022-5.

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Howard, Kathleen P. "Thermodynamics of DNA Duplex Formation: A Biophysical Chemistry Laboratory Experiment." Journal of Chemical Education 77, no. 11 (2000): 1469. http://dx.doi.org/10.1021/ed077p1469.

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Lhotáková, Zuzana, Veronika Kopačková-Strnadová, Filip Oulehle, et al. "Foliage Biophysical Trait Prediction from Laboratory Spectra in Norway Spruce Is More Affected by Needle Age Than by Site Soil Conditions." Remote Sensing 13, no. 3 (2021): 391. http://dx.doi.org/10.3390/rs13030391.

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Scaling leaf-level optical signals to the canopy level is essential for airborne and satellite-based forest monitoring. In evergreen trees, biophysical and optical traits may change as foliage ages. This study aims to evaluate the effect of age in Norway spruce needle on biophysical trait-prediction based on laboratory leaf-level spectra. Mature Norway spruce trees were sampled at forest stands in ten headwater catchments with different soil properties. Foliage biophysical traits (pigments, phenolics, lignin, cellulose, leaf mass per area, water, and nitrogen content) were assessed for three n
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TORSHIN, S. P., and G. A. SMOLINA. "FROM THE COHORT OF OUTSTANDING SCIENTISTS OF TIMIRYAZEV UNIVERSITY TO THE 120TH ANNIVERSARY OF VSEVOLOD KLECHKOVSKIY." Izvestiâ Timirâzevskoj selʹskohozâjstvennoj akademii, no. 5 (2020): 111–17. http://dx.doi.org/10.26897/0021-342x-2020-5-111-117.

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The paper shows the significant contribution of Vsevolod Makrichievich Klechkovskiy to the development of agrochemistry and radioecology. V.M. Klechkovskiy worked all his life at the Department of Agrochemistry of Timiryazev Academy as an assistant professor, associate professor, professor, and Head of the Department. His creative activity was associated with two areas of research – agrochemistry and radioecology (the subject area established by him). In 1946, he was appointed Head of the Biophysical Laboratory (BPhL) at the Department of Agrochemistry and made a significant contribution to th
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Taufiq, Azhary, Melya Riniarti, Duryat Duryat, and Slamet Budi Yuwono. "Biophysical Studies In Khilau Watershed." EnviroScienteae 15, no. 1 (2019): 1. http://dx.doi.org/10.20527/es.v15i1.6317.

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Khilau Watershed (DAS) is one of the sub-watersheds with the status of should be restored. The biophysical conditions of the watershed must be assessed, to determine the suitable actions for land rehabilitation. The purpose of this study was to provide a comparative analysis of baseline data on the biophysical conditions of the Khilau Sub-watershed area based on edaphic and climatic parameters. Data collection method was using cluster sampling in five types of land cover. The data analysis used spatial and laboratory analysis. The results showed that agroforests and annual crops mostly were on
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Gaiduk, M. I., V. V. Grigor'yants, V. P. Zaitsev, V. D. Menenkov, and I. V. Chernousova. "Biophysical substantiation of photoplethysmography in reflected light." Biomedical Engineering 24, no. 2 (1990): 45–50. http://dx.doi.org/10.1007/bf00562866.

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Liao, Weilin, Xiaoping Liu, Elizabeth Burakowski, Dagang Wang, Linying Wang, and Dan Li. "Sensitivities and Responses of Land Surface Temperature to Deforestation-Induced Biophysical Changes in Two Global Earth System Models." Journal of Climate 33, no. 19 (2020): 8381–99. http://dx.doi.org/10.1175/jcli-d-19-0725.1.

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AbstractWhile the significance of quantifying the biophysical effects of deforestation is rarely disputed, the sensitivities of land surface temperature (LST) to deforestation-induced changes in different biophysical factors (e.g., albedo, aerodynamic resistance, and surface resistance) and the relative importance of those biophysical changes remain elusive. Based on the subgrid-scale outputs from two global Earth system models (ESMs, i.e., the Geophysical Fluid Dynamics Laboratory Earth System Model and the Community Earth System Model) and an improved attribution framework, the sensitivities
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Dissertations / Theses on the topic "Biophysical Laboratory"

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Nilsson, Daniel. "Development of Next-Generation Optical Tweezers : The New Swiss Army Knife of Biophysical and Biomechanical Research." Thesis, Umeå universitet, Institutionen för fysik, 2020. http://urn.kb.se/resolve?urn=urn:nbn:se:umu:diva-172362.

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In a time when microorganisms are controlling the world, research in biology is more relevant than ever and this requires some powerful instruments. Optical tweezers use a focused laser beam to manipulate and probe objects on the nano- and microscale. This allows for the exploration of a miniature world at the border between biology, chemistry and physics. New methods for biophysical and physicochemical measurements are continuously being developed and at Umeå University there is a need for a new system that combines several of these methods. This would truly be the new Swiss army knife of bio
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Linenberger, Kimberly J. "Biochemistry Students' Understandings of Enzyme-Substrate Interactions as Investigated through Multiple Representations and the Enzyme-Substrate Interactions Concept Inventory." Miami University / OhioLINK, 2011. http://rave.ohiolink.edu/etdc/view?acc_num=miami1321309534.

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Bachmayer, Marek. "Monitorovací systém pro sledování chodu laboratoře." Master's thesis, Vysoké učení technické v Brně. Fakulta elektrotechniky a komunikačních technologií, 2020. http://www.nusl.cz/ntk/nusl-432835.

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The presented work deals with the development of a monitoring system for monitoring the operation of the laboratory. The theoretical part of the work includes information on the safety of operation and work in biological laboratories, measured physical quantities and the principle of their measurement. The monitoring system is built on a compact ESP32-CAM camera and a WeMos D1 development board. The practical part consists of the design and implementation of a given system and the creation of a full-stack application for displaying live input from the laboratory for monitoring measured quantit
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Mihai, Georgeta. "Methods for brain iron evaluation in normal aging T2 and phase measurements at 3 tesla and 7 tesla /." Columbus, Ohio : Ohio State University, 2007. http://rave.ohiolink.edu/etdc/view?acc%5Fnum=osu1189791295.

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Serrano, Moises A. "Novel Roles of Replication Protein A Phosphorylation in Cellular Response to DNA Damage." Digital Commons @ East Tennessee State University, 2013. https://dc.etsu.edu/etd/1206.

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Human replication protein A (RPA) is an eukaryotic single-stranded DNA binding protein directly involved in a variety of DNA metabolic pathways including replication, recombination, DNA damage checkpoints and signaling, as well as all DNA repair pathways. This project presents 2 novel roles of RPA in the cellular response to DNA damage. The first elucidates the regulation of RPA and p53 interaction by DNA-dependent protein kinase (DNA-PK), ataxia telangiectasia mutated (ATM) and ATM- and Rad3-related (ATR) in homologous recombination (HR). HR and nonhomologous end joining (NHEJ) are 2 distinct
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Borglin, Matthew R. "Analysis of Biofilm Remediation Capacity For Octenyl Succinic Anhydride (OSA), A Bioactive Food Starch Modifier Compound." DigitalCommons@CalPoly, 2020. https://digitalcommons.calpoly.edu/theses/2168.

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Matthew R. Borglin This thesis demonstrates efficacy of Octenyl Succinic Anhydride (OSA), as a biofilm sanitizer. Biofilms allow bacteria to adhere to solid surfaces with the use of excreted polymeric compounds. For example, surfaces found in food production or processing facilities such as the interior of a raw milk holding tank, are some of the most susceptible to biofilm contamination. When present, biofilms can cause a variety of negative effects, which include; reduction of product shelf life, corrosion, and outbreaks of foodborne illnesses. The close association of biofilms with the majo
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Kulkarni, Aditi C. "In vivo MRI of mouse heart at 11.7 t: monitoring of stem-cell therapy for myocardial infarction and evaluation of cardiac hypertrophy." Columbus, Ohio : Ohio State University, 2008. http://rave.ohiolink.edu/etdc/view?acc%5Fnum=osu1228100866.

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Rajpal, Ashdeep Kaur. "Design and Synthesis of Metabolically Stabilized Lipid Probes for the Investigation of Protein–Lipid Binding Interactions." 2011. http://trace.tennessee.edu/utk_gradthes/905.

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Protein–lipid binding interactions play crucial roles in various physiological and pathological processes, making it very important to study these interactions at the molecular level. However, investigation of these interactions is complicated by several issues, including the inherent complexity of membranes as well as the diverse mechanisms by which proteins interact with the membrane surfaces. As a result, many of these interactions remain poorly characterized. Synthetic probes are useful tools employed for studying protein–lipid binding interactions. This thesis will detail the design and
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Books on the topic "Biophysical Laboratory"

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service), SpringerLink (Online, ed. Biophysical Chemistry of Proteins: An Introduction to Laboratory Methods. Springer Science+Business Media, LLC, 2011.

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Maynard, Donald R. Biophysical ecology of the snow crab (chionoecetes opilio): Relating respiration rates and walking speeds from the laboratory to field observations. Dalhousie University, 1991.

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L, Nadeau Jay, ed. Introduction to experimental biophysics: A laboratory guide. CRC, Taylor & Francis Group, 2015.

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Cassata, Francesco. L'Italia intelligente: Adriano Buzzati-Traverso e il Laboratorio internazionale di genetica e biofisica, 1962-69. Donzelli, 2013.

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Buxbaum, Engelbert. Biophysical Chemistry of Proteins: An Introduction to Laboratory Methods. Springer, 2011.

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Laboratory Techniques in Membrane Biophysics. Springer-Verlag, 1994.

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Nadeau, Jay L. Introduction to Experimental Biophysics - A Laboratory Guide. CRC Press, 2015. http://dx.doi.org/10.1201/b18283.

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Passow, Heinz, and Robert Stämpfli. Laboratory Techniques in Membrane Biophysics: An Introductory Course. Springer, 2014.

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Osteoporosis: Methods and Protocols (Methods in Molecular Biology). Humana Press, 2008.

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Book chapters on the topic "Biophysical Laboratory"

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Whitfield, Pamela. "Laboratory X-ray Powder Diffraction." In NATO Science for Peace and Security Series B: Physics and Biophysics. Springer Netherlands, 2012. http://dx.doi.org/10.1007/978-94-007-5580-2_6.

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Phizackerley, R. Paul. "Facilities Available for Biophysics Research at the Stanford Synchrotron Radiation Laboratory." In Synchrotron Radiation in Structural Biology. Springer US, 1989. http://dx.doi.org/10.1007/978-1-4684-8041-2_4.

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Mukhopadhyay, Sanjoy, and Richard Maurer. "Radiological Emergency Response and Preparedness at the Remote Sensing Laboratory." In NATO Science for Peace and Security Series B: Physics and Biophysics. Springer Netherlands, 2015. http://dx.doi.org/10.1007/978-94-017-9891-4_12.

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Warner, Bruce E., and Karen Rath. "Lawrence Livermore National Laboratory’s Contribution to U.S. Preparedness for Nuclear and Radiological Threats." In NATO Science for Peace and Security Series B: Physics and Biophysics. Springer Netherlands, 2015. http://dx.doi.org/10.1007/978-94-017-9894-5_22.

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Hou, Jianghui. "Biophysical approaches for tight junction." In A Laboratory Guide to the Tight Junction. Elsevier, 2020. http://dx.doi.org/10.1016/b978-0-12-818647-3.00003-9.

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Crumley, Carole L. "The Archaeology of Global Environment Change." In Humans and the Environment. Oxford University Press, 2013. http://dx.doi.org/10.1093/oso/9780199590292.003.0028.

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Recent, widely recognized changes in the Earth system are, in effect, changes in the coupled human–environment system. We have entered the Anthropocene, when human activity—along with solar forcing, volcanic activity, precession, and the like—must be considered a component (a ‘driver’) of global environmental change (Crutzen and Stoermer 2000; Levin 1998). The dynamic non-linear system in which we live is not in equilibrium and does not act in a predictable manner (see Fairhead, chapter 16 this volume for further discussion of non-equilibrium ecology). If humankind is to continue to thrive, it is of utmost importance that we identify the ideas and practices that nurture the planet as well as our species. Our best laboratory for this is the past, where long-, medium-, and short-term variables can be identified and their roles evaluated. Perhaps the past is our only laboratory: experimentation requires time we no longer have. Thus the integration of our understanding of human history with that of the Earth system is a timely and urgent task. Archaeologists bring two particularly useful sets of skills to this enterprise: how to collaborate, and how to learn from the past. Archaeology enjoys a long tradition of collaboration with colleagues in both the biophysical sciences and in the humanities to investigate human activity in all planetary environments. Archaeologists work alongside one another in the field, live together in difficult conditions, welcome collaboration with colleagues in other disciplines—and listen to them carefully—and tell compelling stories to an interested public. All are rare skills and precious opportunities. Until recently few practitioners of biophysical, social science, and humanities disciplines had experience in cross-disciplinary collaboration. Many scholars who should be deeply engaged in collaboration to avert disaster (for example, specialists in tropical medicine with their counterparts in land use change) still speak different professional ‘languages’ and have very different traditions of producing information. C. P. Snow, in The Two Cultures (1993 [1959]), was among the first to warn that the very structure of academia was leading to this serious, if unintended, outcome.
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"Restriction Enzymes /." In Introduction to Experimental Biophysics - A Laboratory Guide. CRC Press, 2015. http://dx.doi.org/10.1201/b18283-9.

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"Isolation of Plasmids by Miniprep and Restriction Enzyme Analysis /." In Introduction to Experimental Biophysics - A Laboratory Guide. CRC Press, 2015. http://dx.doi.org/10.1201/b18283-7.

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"Designing a New Construct Using Restriction Enzymes (Computer Lab) /." In Introduction to Experimental Biophysics - A Laboratory Guide. CRC Press, 2015. http://dx.doi.org/10.1201/b18283-8.

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"Ligation /." In Introduction to Experimental Biophysics - A Laboratory Guide. CRC Press, 2015. http://dx.doi.org/10.1201/b18283-10.

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Conference papers on the topic "Biophysical Laboratory"

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Rojas, Andrea D., Eva M. Schmelz, and Rafael V. Davalos. "Separation Analysis of Breast Cancer Progression Lines Using Contactless Dielectrophoresis." In ASME 2011 Summer Bioengineering Conference. American Society of Mechanical Engineers, 2011. http://dx.doi.org/10.1115/sbc2011-53987.

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Selective separation and isolation of microparticles or cells based on their biophysical properties has become an essential step in laboratory use [1]. Techniques include field flow fractionation [2], fluorescent and magnetic activated cell sorting [3], laser tweezers [4] and dielectrophoresis [5]. The latter technique uses a particle’s intrinsic properties to its advantage without altering the original structure or disrupting the viability of the cell which is highly attractive for cancer research.
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Tuchin, Valery V., Dmitry A. Zimnyakov, Vladimir P. Ryabukho, et al. "Special training laboratory on optical biophysics." In Education and Training in Optics and Photonics 2001. SPIE, 2002. http://dx.doi.org/10.1117/12.468711.

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Zimnyakov, Dmitry A., and Valery V. Tuchin. "Special training laboratory on optical biophysics: electronics." In Saratov Fall Meeting 2001, edited by Valery V. Tuchin. SPIE, 2002. http://dx.doi.org/10.1117/12.475633.

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Ryabukho, Vladimir P., Sergey S. Ulyanov, Ekateryna I. Galanzha, and Valery V. Tuchin. "Special training laboratory on optical biophysics: coherent-domain methods in biomedicine." In Saratov Fall Meeting 2001, edited by Valery V. Tuchin. SPIE, 2002. http://dx.doi.org/10.1117/12.475635.

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Fedosov, Ivan V., Alexey N. Bashkatov, Elina A. Genina, Georgy V. Simonenko, Dmitry A. Zimnyakov, and Valery V. Tuchin. "Special training laboratory on optical biophysics: education-research setups for postgraduate students." In Saratov Fall Meeting 2001, edited by Valery V. Tuchin. SPIE, 2002. http://dx.doi.org/10.1117/12.475637.

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El-Beyrouthy, Joyce, and Eric C. Freeman. "Rapid and Real-Time Measurement of Membrane Potential Through Intramembrane Field Compensation." In ASME 2020 Conference on Smart Materials, Adaptive Structures and Intelligent Systems. American Society of Mechanical Engineers, 2020. http://dx.doi.org/10.1115/smasis2020-2352.

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Abstract Synthetic lipid membranes are self-assembled biomolecular double layers designed to approximate the properties of living cell membranes. These membranes are employed as model systems for studying the interactions of cellular envelopes with the surrounding environment in a controlled platform. They are constructed by dispersing amphiphilic lipids into a combination of immiscible fluids enabling the biomolecules to self-assemble into ordered sheets, or monolayers at the oil-water interface. The adhesion of two opposing monolayer sheets forms the membrane, or the double layer. The mechan
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Zimnyakov, Dmitry A., Vladimir P. Ryabukho, Yurii P. Sinichkin, and Valery V. Tuchin. "Special training laboratory on optical biophysics: coherent optics of scattering media and interferometry of random phase objects." In Saratov Fall Meeting 2001, edited by Valery V. Tuchin. SPIE, 2002. http://dx.doi.org/10.1117/12.475634.

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Sinichkin, Yurii P., Leonid E. Dolotov, Irina A. Kiseleva, Dmitry A. Zimnyakov, and Valery V. Tuchin. "Special practical laboratory for training on optical biophysics: in vivo reflectance and fluorescence spectroscopy of the human skin." In Saratov Fall Meeting 2001, edited by Valery V. Tuchin. SPIE, 2002. http://dx.doi.org/10.1117/12.475636.

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Koroll, G. W., M. A. Ryz, J. W. Harding, W. R. Ridgway, M. J. Rhodes, and R. H. McCamis. "Decommissioning AECL Whiteshell Laboratories." In ASME 2003 9th International Conference on Radioactive Waste Management and Environmental Remediation. ASMEDC, 2003. http://dx.doi.org/10.1115/icem2003-4955.

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AECL operates two nuclear R&D laboratories in Canada, Chalk River Laboratories (CRL) near Ottawa, Ontario, and Whiteshell Laboratories (WL), near Winnipeg, Manitoba. Whiteshell Laboratories have been in operation since about 1965. R&D programs carried out at WL included the WR-1 research reactor, which operated from 1965 to 1985, reactor safety research, small reactor development, materials science, post irradiation examination, chemistry, biophysics and radiation applications. The Canadian Nuclear Fuel Waste Management Program was conducted and continues to operate at WL and also at t
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