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1

Kraft, K., J. Stank, and R. Dewenter. "Co-determination and innovation." Cambridge Journal of Economics 35, no. 1 (December 23, 2009): 145–72. http://dx.doi.org/10.1093/cje/bep080.

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2

Jacobi, Otto. "Co-determination and Europe." Transfer: European Review of Labour and Research 12, no. 4 (November 2006): 667–68. http://dx.doi.org/10.1177/102425890601200421.

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3

Baek, Pyoung-Gu. "Education Service Perspective and Workplace Democracy: From value co-creation to communicative co-determination." Journal of Corporate Education and Talent Research 21, no. 3 (September 30, 2019): 1–19. http://dx.doi.org/10.46260/kslp.21.3.1.

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4

Farren, Sean, and Bob Mulvihill. "Beyond Self-Determination Towards Co-Determination in Ireland." Études irlandaises 21, no. 1 (1996): 183–93. http://dx.doi.org/10.3406/irlan.1996.1299.

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5

Sebastian, Dr Deepu Jose. "A Comparative Overview of Levels And Forms on Co-Determination." Global Journal For Research Analysis 3, no. 3 (June 15, 2012): 8–9. http://dx.doi.org/10.15373/22778160/mar2014/68.

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6

Watt, David. "Cohesion, co-ordination, and determination." Journal of Architectural Conservation 9, no. 2 (January 2003): 5–6. http://dx.doi.org/10.1080/13556207.2003.10785339.

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7

FitzRoy, Felix, and Kornelius Kraft. "Co-determination, Efficiency and Productivity." British Journal of Industrial Relations 43, no. 2 (June 7, 2005): 233–47. http://dx.doi.org/10.1111/j.1467-8543.2005.00353.x.

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8

Briam, Karl-Heinz. "Recommendations: shaping the co-determination of the future, adopted by the German "Co-determination Commission"." Transfer: European Review of Labour and Research 4, no. 3 (August 1998): 577–86. http://dx.doi.org/10.1177/102425899800400318.

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9

Berti, Marco, Walter Patrick Jarvis, and Ace Simpson. "Opening Governance to Co-designed Co-determination – for Economic Democracy." Academy of Management Proceedings 2015, no. 1 (January 2015): 15732. http://dx.doi.org/10.5465/ambpp.2015.15732abstract.

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10

Fricke, Werner. "New Technologies and German Co-Determination." Economic and Industrial Democracy 7, no. 4 (November 1986): 541–52. http://dx.doi.org/10.1177/0143831x8674007.

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11

Waldahl, Ragnhild Holmen, and Eivind Å. Skille. "Youth co-determination in Norwegian sport." International Journal of Sport Policy and Politics 8, no. 1 (July 28, 2014): 135–50. http://dx.doi.org/10.1080/19406940.2014.937736.

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12

Breit, Ernst. "Co-determination in European companies (SE)." Transfer: European Review of Labour and Research 4, no. 2 (May 1998): 349–57. http://dx.doi.org/10.1177/102425899800400217.

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13

Meijer, Gerrit. "Co-determination and the market economy." European Journal of Law and Economics 3, no. 4 (December 1996): 361–68. http://dx.doi.org/10.1007/bf00819822.

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14

Stråth, Bo. "1968: from Co-determination to Co-worker. the Power of Language." Thesis Eleven 68, no. 1 (February 2002): 64–81. http://dx.doi.org/10.1177/0725513602068001005.

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15

Ahrne, Goran, Ake Sandberg, Gunnar Broms, Arne Grip, Lars Sundstrom, Jesper Steen, and Peter Ullmark. "Technological Change and Co-Determination in Sweden." Contemporary Sociology 23, no. 2 (March 1994): 204. http://dx.doi.org/10.2307/2075195.

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16

Zeidler, Martin P., and Norbert Perrimon. "Sex determination: Co-opted signals determine gender." Current Biology 10, no. 18 (September 2000): R682—R684. http://dx.doi.org/10.1016/s0960-9822(00)00686-2.

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17

Nouh, M. "Stochastic approach to co sample size determination." Atmospheric Environment (1967) 20, no. 12 (January 1986): 2477–81. http://dx.doi.org/10.1016/0004-6981(86)90078-8.

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18

Rodon, Thierry. "Co‐management and self‐determination in Nunavut." Polar Geography 22, no. 2 (April 1998): 119–35. http://dx.doi.org/10.1080/10889379809377641.

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19

Hakken, David. "Technological Change and Co-Determination in Sweden." Anthropology of Work Review 14, no. 2-3 (June 1993): 37–38. http://dx.doi.org/10.1525/awr.1993.14.2-3.37.

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20

Shulga, Lenna V., and James A. Busser. "Customer self-determination in value co-creation." Journal of Service Theory and Practice 31, no. 1 (November 27, 2020): 83–111. http://dx.doi.org/10.1108/jstp-05-2020-0093.

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PurposeThe purpose of this study is to deepen the understanding of consumers value collaboration with a service provider, specifically, how consumer self-determination affects value co-creation outcomes.Design/methodology/approachSelf-determination theory (SDT) need-based motivational factors were operationalized in co-creation as commitment to resources (autonomy), feedback (competence) and collectives (relatedness). A between–within factorial experimental design (3 × 2 × 4) was conducted using online scenarios depicting value co-creation in a destination resort setting. Respondents were randomly and equally assigned to strong and weak SDT factor conditions. Next, they were exposed to scenarios depicting four types of value co-creation: co-innovation, co-creation of marketing, co-creation of experience and co-recovery, followed by an assessment of their co-created value (CCV), well-being, satisfaction and service advantage perceptions.FindingsResults revealed that overall strong SDT conditions produce better outcomes. Consumers’ relatedness showed the strongest difference between strong and weak SDT conditions on the CCV dimensions. Further analysis revealed that autonomy and relatedness are crucial for collaboration. CCV meaningfulness is central for customers to improve their well-being, satisfaction and competitive advantage perceptions through co-creation.Originality/valueThe study contributes to a line of research on successful voluntary value co-creation processes between consumers and a company. The integration of service-dominant logic (SDL), axiology of value (AOV) and SDT, uniquely operationalized as commitment to resources as autonomy, feedback as competence and co-creation collective as relatedness offers a better understanding of how customers appraise the dimensions of CCV and outcomes of well-being, satisfaction and competitive advantage.
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21

Nouh, M. "Stochastic approach to CO sample size determination." Science of The Total Environment 61 (January 1987): 79–89. http://dx.doi.org/10.1016/0048-9697(87)90358-5.

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22

Shao, Gang Qin, Xiao-Hua Yu, Xing Long Duan, Wei Feng Zhang, Zhong Lai Yi, Chong Wang, Peng Shun, and Xiao Liang Shi. "Determination of Sintering Temperature of Nanocomposite WC-Co." Key Engineering Materials 280-283 (February 2007): 1485–88. http://dx.doi.org/10.4028/www.scientific.net/kem.280-283.1485.

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The need for WC-Co with improved properties, particularly increased hardness and strength combined with increased ductility and toughness, has focused attention on the development of grades with finer and finer-grained powders and cemented carbides. The aim of this study is to determine the sintering temperature of nanocomposite WC-6Co (wt.%) sample by using an optical microscope under high temperature and a DSC / TG apparatus. The WC-Co sample was prepared from nanocomposite powder by hot-press-sintering at the determined sintering temperature. The phase structure of the powder and sintered samples was investigated. The SEM imaging was performed on fracture surfaces of sintered samples. The density and the HRA of sintered samples were also measured.
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23

Mohamed, Niveen. "SPECTROPHOTOMETRIC DETERMINATION OF INDAPAMIDE AND CO-DERGOCRINE MESYLATE." Bulletin of Pharmaceutical Sciences. Assiut 27, no. 1 (June 30, 2004): 11–18. http://dx.doi.org/10.21608/bfsa.2004.65385.

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24

Krasovskii, P. V., Yu V. Blagoveshchenskii, and K. V. Grigorovich. "Determination of oxygen in W-C-Co nanopowders." Inorganic Materials 44, no. 9 (August 30, 2008): 954–59. http://dx.doi.org/10.1134/s0020168508090100.

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25

Yan, Wensheng, Zhihu Sun, Tao Yao, Zhiyun Pan, Zhongrui Li, Qinghua Liu, and Shiqiang Wei. "Determination of Co spin state in rutile Co:TiO2." Journal of Applied Physics 106, no. 12 (December 15, 2009): 123918. http://dx.doi.org/10.1063/1.3272855.

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26

Wachter, Hartmut, and Michael Muller-Camen. "Co-determination and strategic integration in German firms." Human Resource Management Journal 12, no. 3 (July 2002): 76–87. http://dx.doi.org/10.1111/j.1748-8583.2002.tb00072.x.

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27

Frick, Bernd. "Co-determination and Personnel Turnover: The German Experience." Labour 10, no. 2 (June 1996): 407–30. http://dx.doi.org/10.1111/j.1467-9914.1996.tb00091.x.

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28

Lalande, S., J. W. Kelsey, M. J. Joyner, and B. D. Johnson. "Determination of blood volume by pulse CO-oximetry." Physiological Measurement 33, no. 1 (December 7, 2011): 19–27. http://dx.doi.org/10.1088/0967-3334/33/1/19.

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29

Narducci, Dario, Alberto Ornaghi, and Claudio M. Mari. "CO determination in air by YSZ-based sensors." Sensors and Actuators B: Chemical 19, no. 1-3 (April 1994): 566–68. http://dx.doi.org/10.1016/0925-4005(93)01086-j.

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30

Demiray, A. S., M. Kohda, T. Miyawaki, Y. Watanabe, K. Saito, S. Mitani, K. Takanashi, and J. Nitta. "Electrical determination of relative chirality direction in a Co/Cu/Co ferromagnetic ring." Applied Physics Letters 101, no. 6 (August 6, 2012): 062409. http://dx.doi.org/10.1063/1.4743004.

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31

Golodets, G. I., N. V. Pavlenko, and A. I. Tripolskii. "Determination of CO adsorption heats from kinetic data for CO hydrogenation over metals." Reaction Kinetics and Catalysis Letters 34, no. 2 (September 1987): 373–76. http://dx.doi.org/10.1007/bf02068033.

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32

Davis, R., D. P. Woodruff, O. Schaff, V. Fernandez, K. M. Schindler, Ph Hofmann, K. U. Weiss, R. Dippel, V. Fritzsche, and A. M. Bradshaw. "Structure Determination of an Alkali Metal–CO Coadsorption Phase: Ni(111)-K/CO." Physical Review Letters 74, no. 9 (February 27, 1995): 1621–24. http://dx.doi.org/10.1103/physrevlett.74.1621.

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33

Caraker, Emmett, Henning Jørgensen, Mogens O. Madsen, and Kelvin Baadsgaard. "Representation without co-determination? Participation and co-determination for semi-professional shop stewards in the collective participation system in Denmark." Economic and Industrial Democracy 37, no. 2 (June 20, 2014): 269–95. http://dx.doi.org/10.1177/0143831x14538527.

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34

Paraneeiswaran, Arunachalam, Sudhir K. Shukla, V. S. Sathyaseelan, and Toleti Subba Rao. "A spectrophotometric method for the determination Co-EDTA complexes." International Journal of Applied Sciences and Biotechnology 3, no. 4 (December 30, 2015): 584–87. http://dx.doi.org/10.3126/ijasbt.v3i4.13182.

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A precise quantification of Co(II)EDTA complex is required to develop bioremediation approaches for Co(III)EDTA complex that is generated in various industrial processes. It is cumbersome to quantify Co(II)EDTA in a mixture of Co(II)EDTAand Co(III)EDTAby normal UV-visible spectrophotometric methods as both the complexes absorb significantly at 490 nm, which is the λ max of Co(II)EDTA. Whereas other sophisticated techniques such as gas chromatography, atomic absorption spectrophotometer, inductively coupled plasma-atomic emission spectroscopy can measure individual species of Co(II)EDTA or Co(III)EDTA when present alone but are ineffective to measure the Co(II)EDTAprecisely when it is mixed with Co(III)EDTA. Hence, an attempt has been made to develop a spectrophotometric method for its quantification. This paper describes the development of a simple and economic dual wavelength spectrophotometric method for the determination of Co(II)EDTAin a mixture of Co(II)EDTA and Co(III)EDTA complexes. The wavelength pair, 490-580 nm was optimized for the measurement of absorbance for this dual wavelength method of determination of Co(II)EDTA in the presence of Co(III)EDTA. Int J Appl Sci Biotechnol, Vol 3(4): 584-587
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35

Scholz, Robert. "Labour in the Board and Good Work: How to Measure and Evidence From GermanyDate submitted: December 18, 2019Date accepted after double-blind review: May 3, 2021." management revue 32, no. 3 (2021): 219–43. http://dx.doi.org/10.5771/0935-9915-2021-3-219.

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Can board-level co-determination promote Good Work? Good Work can be characterised by fair income, job security, opportunities for personal development, low stress and misuse, and high-quality work equipment. Good Work is not easy to measure, in part since it has a subjective aspect. For this reason, the indicators used in this paper are derived from data on corporate and personnel structures that are supportive of Good Work. Supplementing the numerous studies that exist on the impact of works councils on Good Work, this paper highlights how board-level co-determination can also have a strong positive influence. The paper uses data from the co-determination index (Mitbestimmungsindex), a new and innovative indicator that measures the extent to which co-determination is institutionally embedded within firms. Three examples illustrate the impact of board-level co-determination on Good Work: first, on the linking of elements of Good Work with the remuneration of directors in a highly co-determined corporation; second, on the independence of the member of the management board responsible for the personnel department; and third, on the level of vocational training in the companies.
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36

ZHANG, Xinqing. "“家庭共決模式”: 一種明智的臨床選擇." International Journal of Chinese & Comparative Philosophy of Medicine 11, no. 2 (January 1, 2013): 31–35. http://dx.doi.org/10.24112/ijccpm.111535.

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LANGUAGE NOTE | Document text in Chinese; abstract in English only.Professor Lo strongly argues that family co-determination, rather than self-determination or family-determination, is one of the best choices for protecting the vulnerable in a healthcare setting. The assumption underlying the family co-determination model is that of an individual as a person-in-the-family rather than as an isolated individual. I provide some proofs to enhance the Confucian bioethical base of family co-determination. Based on a national survey of health professionals and patients, I conclude that family member involvement in clinical decision making contributes to better communication between doctors and patients, which is a key factor in alleviating the degree of tension.DOWNLOAD HISTORY | This article has been downloaded 50 times in Digital Commons before migrating into this platform.
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37

Zhang, E., Xiao Ming Chen, Mei Liu, Xiao Ling Liu, Yan Xu, Hao Chen, and Min Huang. "The Spectrophotometric Determination of Co(II) in Microbe Media." Advanced Materials Research 838-841 (November 2013): 2034–39. http://dx.doi.org/10.4028/www.scientific.net/amr.838-841.2034.

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The spectrophotometric determination has been widely used by virtue of low investment, simple equipment, convenient operation and high accuracy. The study discussed the application of picramazochrom spectrophotometry to measure Co (II) in the bacterial culture media including LB, NA and TGY medium. The parameters of chromogenic reaction containing absorption wavelength, buffer solution volume, chromogenic reagent volume and developing time were optimized. Under optimum conditions, the calibration graph was linear in the concentration range of 0~1.5mg/L (r2=0.9991) for Co (II). The LB, NA and TGY medium prepared with standard order (pH 7.0~7.4) have obvious influences on the measurement of Co (II) under shaking conditions (37°C, 120rpm), and the influence rates up to 43.46%, 40.32% and 18.03%, respectively. After the pH value of these media being adjusted to between 5 and 6, the influence rates were interestingly controlled in 5%. This picramazochrom spectrophotometry can be successfully applied to determine the Co (II) concentration in microbe media.
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38

Celia, Christian, Luisa Di Marzio, Marcello Locatelli, Piera Ramundo, Francesca D’Ambrosio, and Angela Tartaglia. "Current Trends in Simultaneous Determination of Co-Administered Drugs." Separations 7, no. 2 (May 28, 2020): 29. http://dx.doi.org/10.3390/separations7020029.

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Recently, high demand of high-throughput analyses with high sensitivity and selectivity to molecules and drugs in different classes with different physical-chemical properties—and a reduction in analysis time—is a principal milestone for novel methodologies that researchers are trying to achieve—especially when analytical procedures are applied to clinical purposes. In addition, to avoid high doses of a single drug that could cause serious side effects, multi-drug therapies are often used to treat numerous diseases. For these reasons, the demand for methods that allow the rapid analysis of mixed compounds has increased in recent years. In order to respond to these needs, new methods and instruments have been developed. However, often the complexity of a matrix can require a long time for the preparation and processing of the samples. Different problems in terms of components, types of matrices, compounds and physical-chemical complexity are encountered when considering drugs association profiles for quantitative analyses. This review addresses not only recently optimized procedures such as chromatographic separation, but also methods that have allowed us to obtain accuracy (precision and trueness), sensitivity and selectivity in quantitative analyses for cases of drug associations.
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39

Majer, Zdeněk, Kateřina Štegnerová, Pavel Hutař, Martin Pletz, Raul Bermejo, and Luboš Náhlík. "Residual Lifetime Determination of Low Temperature Co-Fired Ceramics." Key Engineering Materials 713 (September 2016): 266–69. http://dx.doi.org/10.4028/www.scientific.net/kem.713.266.

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The effect of subcritical crack growth is nowadays intensively studied mainly in relation to the strength of ceramic materials. The main aim of the contribution is to describe behavior of micro-crack propagating in the Low Temperature Co-fired Ceramics (LTCC) under subcritical crack growth (SCCG) conditions. The micro-crack behavior is significantly influenced by residual stresses developed in the LTCC due to different coefficients of thermal expansion of individual components. Two-dimensional numerical model was developed to simulate micro-crack propagation through the composite. The micro-crack propagation direction was determined using Sih’s criterion based on the strain energy density factor and the micro-crack path was obtained. The residual lifetime of the specific ceramic particulate composite (LTCC) was estimated on the basis of experimental data. The paper contributes to a better understanding of micro-crack propagation in particulate ceramic composites in the field of residual stresses.
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40

Herrera-Melian, Jose Alberto, Jose Miguel Dona-Rodriguez, Joaquin Hernandez-Brito, and Jesus Perez Pena. "Voltammetric Determination of Ni and Co in Water Samples." Journal of Chemical Education 74, no. 12 (December 1997): 1444. http://dx.doi.org/10.1021/ed074p1444.

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41

Kelly, Diana. "Book Reviews : Technological Change and Co-Determination in Sweden." Journal of Industrial Relations 35, no. 4 (December 1993): 627–29. http://dx.doi.org/10.1177/002218569303500408.

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42

Föh, Rhona. "CO-DETERMINATION AT MANAGEMENT LEVEL: GERMANY AND THE NETHERLANDS*." Tilburg Law Review 14, no. 2 (January 1, 2007): 145–93. http://dx.doi.org/10.1163/221125907x00100.

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43

Tan, Cher-Dip, and Jessica F. Ni. "Quantitative FTIR Determination of Extinction Coefficients of Adsorbed CO." Journal of Chemical & Engineering Data 42, no. 2 (March 1997): 342–45. http://dx.doi.org/10.1021/je960211c.

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44

Kobayashi, Takeshi, Panakkattu K. Babu, Lajos Gancs, Jong Ho Chung, Eric Oldfield, and Andrzej Wieckowski. "An NMR Determination of CO Diffusion on Platinum Electrocatalysts." Journal of the American Chemical Society 127, no. 41 (October 2005): 14164–65. http://dx.doi.org/10.1021/ja0550475.

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45

İnam, R., H. Mercan, E. Yılmaz, and B. Uslu. "Differential pulse polarographic determination of Co(II) using moxifloxacine." Journal of Analytical Chemistry 62, no. 6 (June 2007): 592–98. http://dx.doi.org/10.1134/s1061934807060172.

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46

Bhatt, Prashant M., and Gautam R. Desiraju. "Co-crystal formation and the determination of absolute configuration." CrystEngComm 10, no. 12 (2008): 1747. http://dx.doi.org/10.1039/b810643f.

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47

Pechan, Michael J., Nienchtze Teng, Jason-Dennis Stewart, J. Zachary Hilt, Eric E. Fullerton, J. S. Jiang, C. H. Sowers, and S. D. Bader. "Anisotropy determination in epitaxial Sm–Co/Fe exchange springs." Journal of Applied Physics 87, no. 9 (May 2000): 6686–88. http://dx.doi.org/10.1063/1.372808.

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48

Madani, S. M., and H. Rijanto. "Protection co-ordination: determination of the break point set." IEE Proceedings - Generation, Transmission and Distribution 145, no. 6 (1998): 717. http://dx.doi.org/10.1049/ip-gtd:19982365.

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49

Royle, Tony. "Avoidance strategies and the German system of co-determination." International Journal of Human Resource Management 9, no. 6 (January 1998): 1026–47. http://dx.doi.org/10.1080/095851998340739.

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50

Roberts, J. L., and G. J. Walker. "Bounding ingestion stream-tube determination via a CO tracer." Experiments in Fluids 24, no. 5-6 (May 11, 1998): 518–20. http://dx.doi.org/10.1007/s003480050201.

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