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1

Hinloopen, Jeroen. "Strategic R&D Co-operatives." Research in Economics 54, no. 2 (June 2000): 153–85. http://dx.doi.org/10.1006/reec.1999.0211.

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2

Pati, Palas Baran, Soumyajit Das, and Sanjio S. Zade. "Benzooxadiazaole-based D-A-D co-oligomers: Synthesis and electropolymerization." Journal of Polymer Science Part A: Polymer Chemistry 50, no. 19 (June 13, 2012): 3996–4003. http://dx.doi.org/10.1002/pola.26195.

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3

Choi, So Young, Won Jun Kim, Seung Jung Yu, Si Jae Park, Sung Gap Im, and Sang Yup Lee. "Engineering the xylose‐catabolizing Dahms pathway for production of poly( d ‐lactate‐ co ‐glycolate) and poly( d ‐lactate‐ co ‐glycolate‐ co ‐ d ‐2‐hydroxybutyrate) in Escherichia coli." Microbial Biotechnology 10, no. 6 (April 19, 2017): 1353–64. http://dx.doi.org/10.1111/1751-7915.12721.

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4

Dave, O’Carroll, and McMahon Ann. "RCN R&D co-ordinating centre." Nursing Standard 13, no. 44 (July 21, 1999): 31. http://dx.doi.org/10.7748/ns.13.44.31.s58.

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5

McMahon, Ann, and Dave O'Carroll. "RCN R&D Co-ordinating Centre." Nursing Standard 13, no. 49 (August 25, 1999): 31. http://dx.doi.org/10.7748/ns.13.49.31.s48.

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6

Crisfield, M. A., U. Galvanetto, and G. Jeleni? "Dynamics of 3-D co-rotational beams." Computational Mechanics 20, no. 6 (November 26, 1997): 507–19. http://dx.doi.org/10.1007/s004660050271.

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7

Barclay, A. J., A. Pietropolli Charmet, K. H. Michaelian, A. R. W. McKellar, and N. Moazzen-Ahmadi. "Micro-solvation of CO in water: infrared spectra and structural calculations for (D2O)2–CO and (D2O)3–CO." Physical Chemistry Chemical Physics 21, no. 48 (2019): 26564–68. http://dx.doi.org/10.1039/c9cp05480d.

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The weakly-bound molecular clusters (D2O)2–CO and (D2O)3–CO are observed in the C–O stretch fundamental region (≈2150 cm−1), and their rotationally-resolved infrared spectra yield precise rotational parameters.
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8

Deloudi, S., and W. Steurer. "5-D modeling of the Co-rich decagonal Al-Co-Ni quasicrystal." Acta Crystallographica Section A Foundations of Crystallography 61, a1 (August 23, 2005): c476. http://dx.doi.org/10.1107/s0108767305080177.

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9

Choi, So Young, Tong Un Chae, Jihoon Shin, Jung Ae Im, and Sang Yup Lee. "Biosynthesis and characterization of poly( d ‐lactate‐ co ‐glycolate‐ co ‐4‐hydroxybutyrate)." Biotechnology and Bioengineering 117, no. 7 (April 21, 2020): 2187–97. http://dx.doi.org/10.1002/bit.27354.

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10

Rocha, Alexandre B. "Intensity of d−d Symmetry-Forbidden Electronic Transition in Cr(CO)6." Journal of Physical Chemistry A 111, no. 21 (May 2007): 4711–13. http://dx.doi.org/10.1021/jp070334b.

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11

Pacoň, Lukáš, Oldřich Vítek, Vít Doleček, Jan Macek, and Jindřich Hořenín. "Prediction of Pulsating Turbine Operation Using 1-D - 3-D Co-Simulation." Strojnícky časopis - Journal of Mechanical Engineering 72, no. 3 (November 1, 2022): 81–96. http://dx.doi.org/10.2478/scjme-2022-0043.

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Abstract This paper describes a possible approach of designing an unconventional turbocharger using co-simulation method. Our goal is to design turbochargers running optimally during pulsating and transient modes. It means to develop a tool capable of co-simulation between 3-D and 1-D CFD. This tool must be fast and precise enough and provide a reliable result. Influence of a coarse mesh versus fine mesh was examined. Different time step size was applied to determine calculation sensitivity. Different types of turbines were tested.
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12

Безверхний, А. И., В. А. Губанов, А. В. Садовников, and Р. Б. Моргунов. "Взаимодействие Дзялошинского-Мория в синтетических ферримагнетиках Pt/Co/Ir/Co/Pt." Физика твердого тела 63, no. 12 (2021): 2053. http://dx.doi.org/10.21883/ftt.2021.12.51665.120.

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We had found nonreciprocity of spin waves in Pt/Co/Ir/Co/Pt synthetic ferrimagnets by Brillouin light scattering technique. It is shown that the main contribution to the nonreciprocity of spin waves is made by the Dzyaloshinskii-Moriya interaction with an energy density D ≈ 1.7 - 2.3 erg/cm2. The energy density of the Dzyaloshinsky-Moriya interaction in Pt/Co/Ir/Co/Pt synthetic ferrimagnets is higher than its values in heterostructures with one Co layer Pt/Co(1 nm)/Ir ~ 1.4 erg/cm2. The D value of synthetic ferrimagnets decreases with increasing thickness of the Co thin layer.
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13

Falker, Gerrit-Milena. "Danone & Co. kontern Vorwürfe zu Vitamin D." Lebensmittel Zeitung 73, no. 45 (2021): 20. http://dx.doi.org/10.51202/0947-7527-2021-45-020.

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14

Feifel, Bastian, Hans-Joachim Schönfeld, and Philipp Christen. "d-Peptide Ligands for the Co-chaperone DnaJ." Journal of Biological Chemistry 273, no. 20 (May 15, 1998): 11999–2002. http://dx.doi.org/10.1074/jbc.273.20.11999.

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15

Saito, Hitoshi, Akimasa Sakuma, Masaki Nakano, Yasuo Ando, Ryoichi Nakatani, Hidefumi Asano, Jun Hayakawa, et al. "Co-publication withJournal of Physics D: Applied Physics." Journal of Physics: Conference Series 266 (January 28, 2011): 011003. http://dx.doi.org/10.1088/1742-6596/266/1/011003.

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16

Yao, Shao-Kui, Lu Ding, Peng Liu, Chun-Hong Zhang, and Wei-Zhong Zhao. "On d -Dimensional Lattice (co)sine n -Algebra." Communications in Theoretical Physics 66, no. 4 (October 1, 2016): 423–30. http://dx.doi.org/10.1088/0253-6102/66/4/423.

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17

Gaidukova, Irina Yu, and Ashot S. Markosyan. "d-magnetism instability in R-Co intermetallic compounds." Journal of Science: Advanced Materials and Devices 1, no. 2 (June 2016): 105–12. http://dx.doi.org/10.1016/j.jsamd.2016.06.008.

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18

Zeger, Gabriele, Dieter Plachke, Heinz Dieter Carstanjen, and Hans-Rainer Trebin. "Is d-Al–Cu–Co a random tiling?" Materials Science and Engineering: A 294-296 (December 2000): 291–94. http://dx.doi.org/10.1016/s0921-5093(00)01214-4.

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19

HAGGIN, JOSEPH. "Co-op Energy R&D Funding Proposed." Chemical & Engineering News 65, no. 4 (January 26, 1987): 14. http://dx.doi.org/10.1021/cen-v065n004.p014.

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20

Fuente, José. "Northern tungusic */Vo-tmAr/ ∼ */Co-d(ï)mAr/." Acta Orientalia Academiae Scientiarum Hungaricae 64, no. 2 (June 2011): 183–200. http://dx.doi.org/10.1556/aorient.64.2011.2.4.

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21

Maamari, Bassem E., and Alfred Osta. "Open Innovation in R&D." International Journal of Knowledge Management 18, no. 1 (January 2022): 1–11. http://dx.doi.org/10.4018/ijkm.296261.

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Breakthrough innovations are crucial drivers of economic progress, often depending on external knowledge sources to complement internal knowledge. Co-patenting is one way to achieve this by implementing open innovation within research and development. The purpose of this paper is to explore the impact of co-patenting on breakthrough innovations in the pharmaceutical industry. A research question is tested empirically using an archival dataset comprising 866 patents in Pharma. The findings show that co-patenting has a significant positive impact on breakthrough innovations. Short of previous investigation, this paper provides new empirical insights on the open innovation and co-patenting levels, leading to both academic and practical implications on the field.
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22

Krauss, G., Q. Gu, S. Katrych, and W. Steurer. "A high pressure high temperature study of Co-rich d-Al-Co-Ni." Acta Crystallographica Section A Foundations of Crystallography 61, a1 (August 23, 2005): c38. http://dx.doi.org/10.1107/s0108767305098375.

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23

Peng, Yu, Ge Yu, Shaoxiong Tian, and Hong Li. "Co-Expression and Co-Purification of Archaeal and Eukaryal Box C/D RNPs." PLoS ONE 9, no. 7 (July 31, 2014): e103096. http://dx.doi.org/10.1371/journal.pone.0103096.

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24

Dubinin, Nikolay. "Account of non-diagonal d-d-Electron couplings in Fe-Co liquid alloy." Advanced Studies in Theoretical Physics 7 (2013): 677–78. http://dx.doi.org/10.12988/astp.2013.3544.

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25

Dubinin, Nikolay. "Account of non-diagonal d-d-electron couplings in Co-Ni liquid alloy." Advanced Studies in Theoretical Physics 8 (2014): 375–76. http://dx.doi.org/10.12988/astp.2014.3669.

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26

Simmonds, M. J., M. J. Baldwin, G. De Temmerman, and R. P. Doerner. "TMAP modeling of D release from baked multi-layer Be–D co-deposits." Physica Scripta T171 (January 1, 2020): 014043. http://dx.doi.org/10.1088/1402-4896/ab4de4.

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27

Rodger, Alison. "d-d Transitions of Co(III) Complexes Studied by Associated Induced Circular Dichroism." Inorganica Chimica Acta 122, no. 1 (December 1986): 25–30. http://dx.doi.org/10.1016/s0020-1693(00)81262-1.

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28

Zhen, Wenyao, Yannan Zhu, Weiping Wang, and Zhaosheng Hou. "Synthesis and Properties of Amphipathic Poly(D,L-lactide-co-glycolide)-polyethylene glycol-poly(D,L-lactide-co-glycolide) Triblock Copolymers." Australian Journal of Chemistry 68, no. 10 (2015): 1593. http://dx.doi.org/10.1071/ch15094.

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In this paper, amphipathic poly(d,l-lactide-co-glycolide)-polyethylene glycol-poly(d,l-lactide-co-glycolide) (PLGA-PEG-PLGA) triblock copolymers were synthesized via bulk ring-opening polymerization with d,l-lactide (d,l-LA), glycolide (GA), and polyethylene glycol (PEG) as raw materials and tin(ii) bis(2-ethylhexanoate) (Sn(Oct)2) as catalyst. The synthesis and purification processes were free from organic solvent. The chemical structure of PLGA-PEG-PLGA was characterized by Fourier transform infrared spectroscopy, 1H NMR, gel permeation chromatography, differential scanning calorimetry, and thermo gravimetric analysis. The thermo-sensitivity of PLGA-PEG-PLGA aqueous solution was examined, and the results showed that the copolymers concentration, mass ratio of d,l-LA/GA, and molecular weight of PEG played important parts in controlling the sol–gel transition temperature. The sol–gel transition occurred at lower temperatures with higher copolymer concentrations and mass ratios of d,l-LA/GA. In contrast, the sol–gel transition temperature increased with higher molecular weights of PEG. In vitro drug release studies were carried out using ceftibuten as a model drug. The results indicated that PLGA-PEG-PLGA prepared with 30 wt-% PEG1500 and 70 wt-% PLGA (mass ratio of d,l-LA/GA = 2 : 1) was an effective system for achieving long-sustained controlled release. The drug release from the hydrogel showed a higher initial release followed by a slower pattern up to 120 h, and the mean retention time was ~50 h.
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29

Chen, Rui, Jianyuan Hao, Chengdong Xiong, and Xianmo Deng. "Biodegradable Thermogelling Poly(D,L-lactide-co-p-dioxanone)-Poly(ethylene glycol)-Poly(D,L-lactide-co-p-dioxanone) Triblock Copolymer." Advanced Engineering Materials 12, no. 9 (September 2010): B504—B510. http://dx.doi.org/10.1002/adem.201080016.

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30

Isabel, Parralejo Alcobendas Ana, Royano Barroso Luis, Cabanillas Patilla Juan, and González Cortés Jerónimo. "Biogas from Nitrogen-Rich Biomass as an Alternative to Animal Manure Co-Substrate in Anaerobic Co-Digestion Processes." Energies 15, no. 16 (August 18, 2022): 5978. http://dx.doi.org/10.3390/en15165978.

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Nitrogen-rich biomass can be suitable for utilization as a substrate in anaerobic co-digestion (AC-D) instead of animal manure. This biomass combined with other substrates could replace animal waste in certain cases in which animal waste cannot be used to obtain methane gas. Methane is the majority component of the biogas produced in AC-D used as an energy source. In this research, a comparative study has been developed between leguminous plant biomass and pig manure in AC-D in a semicontinuous regime at different Organic Load Rate (OLR) values (1.2–1.8 g VS LD−1 d−1). The most elevated methane yield (494 NL CH4 kg VS−1) belongs to assays developed with nitrogen-rich biomass at 1.4 g VS LD−1 d−1. Methane-yield results of nitrogen-rich biomass are higher than pig manure results for all OLR studied values. The digestate obtained in the AC-D is a fertilizer of interest due to its nitrogen content and ability to save energy by replacing mineral fertilizers.
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31

Huang, Jiawei, Lina Yu, Wenli Zhang, Tao Zhang, Cuie Guang, and Wanmeng Mu. "Production of d -mannose from d -glucose by co-expression of d -glucose isomerase and d -lyxose isomerase in Escherichia coli." Journal of the Science of Food and Agriculture 98, no. 13 (May 20, 2018): 4895–902. http://dx.doi.org/10.1002/jsfa.9021.

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32

Bor, Sanne, and Kees Boersma. "Processes in R&D Collaboration." International Journal of Information Technology Project Management 1, no. 3 (July 2010): 1–13. http://dx.doi.org/10.4018/jitpm.2010070101.

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This paper examines the process leading to a formalised co-operation. A comparative case study of Research and Development (R&D) collaborations illustrates how, during the process of formalising, the creation of shared understanding of the co-operation is supported or hindered. When participants are involved in setting goals, writing work plans, and creating the rules for the co-operation, each participant will have a better understanding of their relationship with others, their own role and responsibility and those of the others. In this study, the authors identify five possible factors that encourage or discourage the partners to use the process of formalising for the purpose of sensemaking.
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33

Stankiewicz, Antoni. "Błąd co do istotnych przymiotów i sakramentalności małżeństwa." Prawo Kanoniczne 28, no. 3-4 (December 10, 1985): 17–31. http://dx.doi.org/10.21697/pk.1985.28.3-4.02.

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lu x ta can. 1099 C IC a. 1983 e rro r circa m a trim o n ii u n ita tc m vel in -d isso lu b ilitate m a u t sac ra m e n ta le m d ig n itatem , d u m m o d o n o n d e te rm in e t v o lu n ta te m , n o n v itia t co n sen su m m atrim o n ialem .F o rm u lâ t» h u iu s canomis d iffe rt ab ilia can. 1.084 C IC a. 19117, qu o -n ia m (in te x tu can !1099 om issa est d en o m in atio e rro ris ta m q u a m„siiimplicis”, e t locutio „etsi d e t cau sam c o n tra c ta i” m u ta ta est in aliam ,id est „dum m odo n o n d e te rm in e t v o lu n ta te m ”.N o tan d u m est tarn en p ra e fa tu m can. 1099, slcu t de cetero can. 1084Codicis a. 1017, efficaciam iu rid ic a m eiu sm o d i e rro ri p e r se negare,cu m s ta tu a t e rro re m circa p ro p rie ta te s essen tiales et sa c ra m e n ta le md ig n ita te m m a trim o n ii co nsensum m a trim o n ialem n o n v itiare.Niihdloseclus p ra e te r fig u ra m e rro ris q u i effectu s iu rid ico s n o n p ro -d u cit, can. 109:9 a d m ittit et a lia m e rro ris iu ris fig u ram , q u i n em p e v o ­lu n ta te m contraibentis d e te rm in a re potest. T alis a u te m e rro r, q u i vocairi p o te st e rro r-v ltiu m , tu n c v e rific a tu r, cu m fit u n icu m m o tiv u mv o lu o tate m d e te rm in a n s ad elig en d u m sch em a m a trim o n ia le (re tarn enaigitur de sc h e m a te p se u d o -m atrim o n iali) co n fo rm e p lacitis exroneis,id e st co n so rtiu m solubile, polygam icum , n a n sa e ra m e n ta le. P ro fectoex hoc e rro re p ro c ed it v o lu n ta tis d e term in atio co n tra p ro p rie ta te s(essentiales vel sac ra m e n ta le m d ig n ita te m m atrim o n ii, ddscoirdiam efficiens tem p o re c o n tra ctu s in te r v o lu n ta te m internam i ta li e rro re d ete rrn in a ta m et e x te rn a m eius d ecla ratio n em , q u ae c o n seq u en ter v a lid u m v in cu lu m m a trim o n iale, ad instair can. 1101 § 2, p ro d u c ere n o nv alet.
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34

Bandwar, Rajiv P., Medury D. Sastry, Ramakant M. Kadam, and Chebrolu P. Rao. "Transition-metal saccharide chemistry: synthesis and characterization of d-glucose, d-fructose, d-galactose, d-xylose, d-ribose, and maltose complexes of Co(II)." Carbohydrate Research 297, no. 4 (February 1997): 333–39. http://dx.doi.org/10.1016/s0008-6215(96)00285-6.

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35

Wolff, Michael F. "Managers at Work: Technology Council Helps Square D Co. Manage Global R&D." Research-Technology Management 36, no. 2 (March 1993): 8–10. http://dx.doi.org/10.1080/08956308.1993.11670883.

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36

Hou, Benjamin, Bishesh Khanal, Amir Alansary, Steven McDonagh, Alice Davidson, Mary Rutherford, Jo V. Hajnal, Daniel Rueckert, Ben Glocker, and Bernhard Kainz. "3-D Reconstruction in Canonical Co-Ordinate Space From Arbitrarily Oriented 2-D Images." IEEE Transactions on Medical Imaging 37, no. 8 (August 2018): 1737–50. http://dx.doi.org/10.1109/tmi.2018.2798801.

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37

Torres, Pedro, and Francisco Batista-Viera. "Production of d-tagatose and d-fructose from whey by co-immobilized enzymatic system." Molecular Catalysis 463 (February 2019): 99–109. http://dx.doi.org/10.1016/j.mcat.2018.11.017.

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38

Chen, Xiaoyan, Wen Wang, Jingliang Xu, Zhenhong Yuan, Tao Yuan, Yu Zhang, Cuiyi Liang, Minchao He, and Ying Guo. "Production of d -psicose from d -glucose by co-expression of d -psicose 3-epimerase and xylose isomerase." Enzyme and Microbial Technology 105 (October 2017): 18–23. http://dx.doi.org/10.1016/j.enzmictec.2017.06.003.

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39

Özyüncü, Seniha Yolcular, Serap Teksöz, Çiğdem İçhedef, E. İlker Medine, Çığır Biray Avcı, Cumhur Gündüz, and Perihan Ünak. "Radiolabeled D-Penicillamine Magnetic Nanocarriers for Targeted Purposes." Journal of Nanoscience and Nanotechnology 16, no. 4 (April 1, 2016): 4174–79. http://dx.doi.org/10.1166/jnn.2016.11646.

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The aim of this study is to synthesize D-Penicillamine (D-PA) conjugated magnetic nanocarriers for targeted purposes. Magnetic nanoparticles were prepared by partial reduction method and surface modification was done with an amino silane coupling agent’s (structural properties), AEAPS, the particles were characterized by Scanning Electron Microscope (SEM), X-ray Diffraction (XRD). After that D-PA was linked with the magnetic nanoparticles (MNPs) and has been radiolabeled with [99mTc(CO)3]+ core. Quality controls of [99mTc(CO)3-MNP-D-PA] were established by Cd(Te) detector. The radiolabeling efficiency of magnetic nanoparticles ([99mTc(CO)3-MNP-D-PA]) was about 97.05% with good in vitro stability during the 24 hour period. As a parallel study, radiolabeled D-PA complex ([99mTc(CO)3-D-PA]) was prepared with a radiolabeling yield of 97.93%. At the end, biologic activities of binding complexes were investigated on MCF7 human breast cancer cells. Our results show that, radiolabeled magnetic nanoparticles with core [99mTc(CO)3]+ ([99mTc(CO)3-MNP-D-PA]) showed the highest uptake on MCF7 cells which were applied magnetic field in the wells. In that case, result of this study emphasizes that radiolabeled magnetic nanoparticles with core [99mTc(CO)3]+ would support new occurrences of new agents.
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40

Holick, Michael F. "The CO-VID D-Lemma: A Call for Action." Nutrients 14, no. 5 (February 24, 2022): 963. http://dx.doi.org/10.3390/nu14050963.

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It is remarkable how an invisible, inanimate particle—severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2, COVID-19)—that is hell-bent on reproducing itself was able to bring our modern civilization to its knees [...]
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41

Zhou, Hao, Lu Qi, Hai Huang, Xu Yang, Zhaoliang Wan, and Xianglong Wen. "CANet: Co-attention network for RGB-D semantic segmentation." Pattern Recognition 124 (April 2022): 108468. http://dx.doi.org/10.1016/j.patcog.2021.108468.

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42

Samir, Alicic. "D.9.2.27.17 versus CO.2.4: Which text is interpolated?" Zbornik radova Pravnog fakulteta, Novi Sad 46, no. 2 (2012): 375–90. http://dx.doi.org/10.5937/zrpfns46-2542.

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43

GEROSKI, P. A. "ANTITRUST POLICY TOWARDS CO-OPERATIVE R&D VENTURES." Oxford Review of Economic Policy 9, no. 2 (1993): 58–71. http://dx.doi.org/10.1093/oxrep/9.2.58.

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44

Figueroa-O'Farrill, José Miguel, and Sonia Stanciu. "D-brane charge, flux quantisation and relative (co)homology." Journal of High Energy Physics 2001, no. 01 (January 4, 2001): 006. http://dx.doi.org/10.1088/1126-6708/2001/01/006.

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45

Shirazi-Beechey, Soraya P. "Intestinal sodium-dependent D-glucose co-transporter: Dietary regulation." Proceedings of the Nutrition Society 55, no. 1B (March 1996): 167–78. http://dx.doi.org/10.1079/pns19960018.

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46

DeLeon, R. L. "Fluorescence lifetime of the CO D’ 1Σ+ electronic state." Journal of Chemical Physics 92, no. 3 (February 1990): 1521–22. http://dx.doi.org/10.1063/1.458082.

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47

Miotti, Luis, and Frédérique Sachwald. "Co-operative R&D: why and with whom?" Research Policy 32, no. 8 (September 2003): 1481–99. http://dx.doi.org/10.1016/s0048-7333(02)00159-2.

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48

Zheng, Long, Aimin Sun, Jinyuan Ma, and Guidan Wei. "Theoretical study of p–d hybridization in Co perovskite." Physica B: Condensed Matter 404, no. 16 (August 2009): 2345–48. http://dx.doi.org/10.1016/j.physb.2009.04.043.

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49

Coyle, Joseph T., Darrick Balu, and Herman Wolosker. "d-Serine, the Shape-Shifting NMDA Receptor Co-agonist." Neurochemical Research 45, no. 6 (March 18, 2020): 1344–53. http://dx.doi.org/10.1007/s11064-020-03014-1.

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Mullins, D. A., B. Roop, and J. M. White. "Diffusion of coadsorbed CO and D on Ni(lOO)." Chemical Physics Letters 129, no. 5 (September 1986): 511–15. http://dx.doi.org/10.1016/0009-2614(86)80238-x.

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