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1

Lawn, Marie Amélie, and Lars Schäfer. "Decompositions of para-complex vector bundles and para-complex affine immersions." Results in Mathematics 48, no. 3-4 (November 2005): 246–74. http://dx.doi.org/10.1007/bf03323368.

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2

Szancer, Zuzanna. "On Para-Complex Affine Hyperspheres." Results in Mathematics 72, no. 1-2 (March 30, 2017): 491–513. http://dx.doi.org/10.1007/s00025-017-0676-6.

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3

Gutowski, J. B., and W. A. Sabra. "Para-complex geometry and gravitational instantons." Classical and Quantum Gravity 30, no. 19 (September 4, 2013): 195001. http://dx.doi.org/10.1088/0264-9381/30/19/195001.

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4

Schäfer, Lars. "tt∗-bundles in para-complex geometry, special para-Kähler manifolds and para-pluriharmonic maps." Differential Geometry and its Applications 24, no. 1 (January 2006): 60–89. http://dx.doi.org/10.1016/j.difgeo.2005.07.001.

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5

Anciaux, Henri, and Konstantina Panagiotidou. "Hopf hypersurfaces in pseudo-Riemannian complex and para-complex space forms." Differential Geometry and its Applications 42 (October 2015): 1–14. http://dx.doi.org/10.1016/j.difgeo.2015.05.004.

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6

Anciaux, Henri, and Maikel Antonio Samuays. "Lagrangian submanifolds in para-complex Euclidean space." Bulletin of the Belgian Mathematical Society - Simon Stevin 23, no. 3 (September 2016): 421–37. http://dx.doi.org/10.36045/bbms/1473186515.

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7

Moussa, Jamal, Daniel A. Lev, Kamal Boubekeur, Marie Noelle Rager, and Hani Amouri. "A η4-Dithio-para-benzoquinone Metal Complex." Angewandte Chemie 118, no. 23 (June 2, 2006): 3938–42. http://dx.doi.org/10.1002/ange.200600414.

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8

Moussa, Jamal, Daniel A. Lev, Kamal Boubekeur, Marie Noelle Rager, and Hani Amouri. "A η4-Dithio-para-benzoquinone Metal Complex." Angewandte Chemie International Edition 45, no. 23 (June 2, 2006): 3854–58. http://dx.doi.org/10.1002/anie.200600414.

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9

Yousif Ibrahim Abad Alrhman, Ibrahim. "Lagrangian Dynamical Systems with Three Para-complex Structures." International Journal of Systems Science and Applied Mathematics 4, no. 4 (2019): 47. http://dx.doi.org/10.11648/j.ijssam.20190404.11.

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10

Woodbridge, Yonatan, Gal Elidan, and Ami Wiesel. "Signal Detection in Complex Structured Para Normal Noise." IEEE Transactions on Signal Processing 65, no. 9 (May 1, 2017): 2306–16. http://dx.doi.org/10.1109/tsp.2017.2649479.

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11

Delduc, F., T. Kameyama, S. Lacroix, M. Magro, and B. Vicedo. "Ultralocal Lax connection for para-complex ZT-cosets." Nuclear Physics B 949 (December 2019): 114821. http://dx.doi.org/10.1016/j.nuclphysb.2019.114821.

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12

Crasmareanu, Mircea, and Cristian Ida. "Almost Analyticity on Almost (Para) Complex Lie Algebroids." Results in Mathematics 67, no. 3-4 (October 9, 2014): 495–519. http://dx.doi.org/10.1007/s00025-014-0415-1.

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13

Potapov, A. V., L. A. Surin, V. A. Panfilov, B. S. Dumesh, T. F. Giesen, S. Schlemmer, P. L. Raston, and W. Jäger. "ROTATIONAL SPECTROSCOPY OF THE CO-PARA-H2MOLECULAR COMPLEX." Astrophysical Journal 703, no. 2 (September 16, 2009): 2108–12. http://dx.doi.org/10.1088/0004-637x/703/2/2108.

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14

Schäfer, Lars. "Para-tt*-bundles on the tangent bundle of an almost para-complex manifold." Annals of Global Analysis and Geometry 32, no. 2 (December 6, 2006): 125–45. http://dx.doi.org/10.1007/s10455-006-9050-8.

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15

Benitez, J., L. Berumen, C. Galvan, and E. Gomez. "Successful catheter ablation of para-Hisian premature ventricular complex." Archives of Cardiovascular Diseases Supplements 14, no. 1 (January 2022): 80–81. http://dx.doi.org/10.1016/j.acvdsp.2021.09.175.

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16

Zahreddine, Ziad. "On positive para-odd and complex discrete reactance functions." Journal of Interdisciplinary Mathematics 21, no. 1 (January 2, 2018): 243–51. http://dx.doi.org/10.1080/09720502.2017.1367525.

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17

İŞCAN, Murat, Hilmi SARSILMAZ, and Sibel TURANLI. "On 4-dimensional almost para-complex pure-Walker manifolds." TURKISH JOURNAL OF MATHEMATICS 38 (2014): 1071–80. http://dx.doi.org/10.3906/mat-1311-24.

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18

Kirss, Rein U., and Richard Eisenberg. "Para-hydrogen-induced polarization in rhodium complex-catalyzed hydrogenation reactions." Journal of Organometallic Chemistry 359, no. 1 (January 1989): C22—C26. http://dx.doi.org/10.1016/0022-328x(89)85265-9.

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19

Fagher, Kristina, Lovemore Kunorozva, Marelise Badenhorst, Wayne Derman, James Kissick, Evert Verhagen, Osman Hassan Ahmed, et al. "Safe and Healthy Para sport project (SHAPE): a study protocol of a complex intervention within Para sport." BMJ Open Sport & Exercise Medicine 8, no. 3 (August 2022): e001392. http://dx.doi.org/10.1136/bmjsem-2022-001392.

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Elite Para athletes report a high incidence of sports injuries, illnesses and other health issues. Despite this, there are few prevention programmes in Para sport, and many of the existing prevention programmes are not adapted to Para athletes. To improve the success of preventive measures, it has been suggested that sports safety work should facilitate health promotion, including athlete health education. Therefore, the overarching aim of this project is to evaluate an accessible health promotion web platform as part of a complex intervention that aims to improve knowledge of athlete health in Para sport. In this protocol, the development, future implementation and evaluation of the intervention are described. To inform the implementation and use of such interventions, it is recommended to involve end users in the development and implementation process. Therefore, a participatory design process, including athletes and the sports organisation, was used to develop an accessible health promotion web platform. To evaluate this complex intervention, a process evaluation combining quantitative evaluation assessing causal pathways with qualitative methods assessing multifaceted pathways will be used. The primary outcomes are injury/illness incidence, athlete health parameters, health literacy and user behaviour. A cohort of elite Para athletes (n=150) from Sweden and South Africa will be invited to participate. This project will be the first that aims to improve athlete health in Para sport through pragmatic and accessible health promotion. It is a boundary-crossing project that will be conducted in a real-world sport setting, including athletes with different socioeconomic backgrounds.
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20

Alrhman, Ibrahim Yousif I. Abad. "Hamiltonian mechanics with Two Almost para-Complex Structures on Symplectic Geometry." IOSR Journal of Mathematics 13, no. 03 (June 2017): 68–71. http://dx.doi.org/10.9790/5728-1303046871.

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21

Schäfer, Martin. "Internal rotation in the para-difluorobenzene–nitrogen van der Waals complex." Phys. Chem. Chem. Phys. 6, no. 13 (2004): 3271–79. http://dx.doi.org/10.1039/b401230p.

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22

Kruglikov, B. S., and H. Winther. "Non-degenerate para-complex structures in 6D with large symmetry groups." Annals of Global Analysis and Geometry 52, no. 3 (May 20, 2017): 341–62. http://dx.doi.org/10.1007/s10455-017-9561-5.

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23

Schäfer, Lars. "Harmonic bundle solutions of topological–antitopological fusion in para-complex geometry." Differential Geometry and its Applications 26, no. 1 (February 2008): 97–105. http://dx.doi.org/10.1016/j.difgeo.2007.11.005.

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24

Calvaruso, Giovanni, and Gabriela P. Ovando. "From almost (para)-complex structures to affine structures on Lie groups." manuscripta mathematica 155, no. 1-2 (June 12, 2017): 89–113. http://dx.doi.org/10.1007/s00229-017-0934-7.

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25

Bouet, J. Y. "P1 ParA interacts with the P1 partition complex at parS and an ATP-ADP switch controls ParA activities." EMBO Journal 18, no. 5 (March 1, 1999): 1415–24. http://dx.doi.org/10.1093/emboj/18.5.1415.

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26

Ida, Cristian, Alexandru Ionescu, and Adelina Manea. "A note on para-holomorphic Riemannian–Einstein manifolds." International Journal of Geometric Methods in Modern Physics 13, no. 09 (September 20, 2016): 1650107. http://dx.doi.org/10.1142/s0219887816501073.

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The aim of this note is the study of Einstein condition for para-holomorphic Riemannian metrics in the para-complex geometry framework. First, we make some general considerations about para-complex Riemannian manifolds (not necessarily para-holomorphic). Next, using a one-to-one correspondence between para-holomorphic Riemannian metrics and para-Kähler–Norden metrics, we study the Einstein condition for a para-holomorphic Riemannian metric and the associated real para-Kähler–Norden metric on a para-complex manifold. Finally, it is shown that every semi-simple para-complex Lie group inherits a natural para-Kählerian–Norden Einstein metric.
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27

Domingos do Nascimento, Bruno. "Análise do Regime Complex para mudanças climáticas: percepções sobre a vulnerabilidade social." Revista de Iniciação Científica em Relações Internacionais 8, no. 16 (July 16, 2021): 57–76. http://dx.doi.org/10.22478/ufpb.2318-9452.2021v8n16.54360.

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Hoje, considera-se que as mudanças climáticas exigirão resposta ativa dos governos nacionais e subnacionais e das organizações internacionais. As mudanças climáticas também serão responsáveis por catapultar as fragilidades existentes em diversos grupos sociais. A ação ativa sobre o problema demandará que o Regime Climático seja incisivo e coordene as atividades e políticas que serão desenvolvidas. Todavia, devido à transversalidade das mudanças climáticas e seus efeitos, a sobreposição normativa poderá ser um contratempo, por tornar mais custosa a tomada de decisão, ou poderá trazer benefícios na gestão dos diversos problemas que se associam às mudanças climáticas, como destaca a literatura sobre Regime Complex. Mas, ainda assim, é importante investigar os gargalos enfrentados na plena execução da agenda climática. Dessa forma, este artigo, objetiva a análise dos elementos constitutivos do Regime Complex de mudanças climáticas, destacando a trajetória institucional e possíveis caminhos a serem seguidos, mapeando as diversas regras, normas e instituições que compõem o regime internacional de mudanças climáticas (main regime) e dos principais outros regimes que também incidem sobre o tema. Para tanto, procede-se uma revisão de literatura de cunho qualitativo, em bases de dados relevantes, com a intenção de criar um universo analítico capaz de aprofundar o tema e promover uma compreensão mais detalhada. Desse modo, observa-se que o regime climático precisa se empoderar de suas características particulares, como a fragmentação e sua transversalidade temática, o que permite concluir que a UNFCCC não pode ser um limitante das capacidades desse sistema. Além disso, há uma necessidade urgente para a criação de esforços que atenuem a exposição de grupos sociais aos eventos extremos oriundos da alteração no clima.
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28

Koppurapu, Vikas, and Nikhil Meena. "A review of the management of complex para-pneumonic effusion in adults." Journal of Thoracic Disease 9, no. 7 (July 2017): 2135–41. http://dx.doi.org/10.21037/jtd.2017.06.21.

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29

Kawashima, Yoshiyuki, Yasuhiro Ohshima, and Yasuki Endo. "Rotational spectrum of the N2··CO complex: ortho-N2 and para-N2." Chemical Physics Letters 315, no. 3-4 (December 1999): 201–9. http://dx.doi.org/10.1016/s0009-2614(99)01225-7.

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30

Biswas, N., Sanjay Wategaonkar, T. Watanabe, T. Ebata, and N. Mikami. "Fluorescence, REMPI, hole-burning, and FDIR spectroscopy of para-cyanophenol–water1 complex." Chemical Physics Letters 394, no. 1-3 (August 2004): 61–67. http://dx.doi.org/10.1016/j.cplett.2004.06.108.

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31

Larsen, Lotta Björklund. "Moulding Knowledge into a Legal Complex: Para-ethnography at the Swedish Tax Agency." Journal of Business Anthropology 2, no. 2 (October 31, 2013): 209. http://dx.doi.org/10.22439/jba.v2i2.4159.

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The foundation of a functioning welfare state is a tax system that is widely accepted and considered to be fair and legitimate. How and by what means a tax collecting agency interprets the laws are thus seen to have an impact on taxpayers’ willingness to pay. This article addresses the various practices, knowledge and forms of data that the Swedish Tax Agency applies in a risk assessment project, against a background of the Agency’s on-going endeavour for legitimacy. This article shows how its methods not only entail taking account of massive amounts of Tax Agency regulations, research, and statistical results to follow, but also reveals how stories, hunches and examples from media and everyday life coalesce to affect those methods. So, too, with the ethnographer’s role: how is she to deal with knowledge production within a governmental organization whose employees read, and also learn from, what she writes.
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32

Bozell, Joseph J., Bonnie R. Hames, and Donald R. Dimmel. "Cobalt-Schiff Base Complex Catalyzed Oxidation of Para-Substituted Phenolics. Preparation of Benzoquinones." Journal of Organic Chemistry 60, no. 8 (April 1995): 2398–404. http://dx.doi.org/10.1021/jo00113a020.

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33

Lemke, Christoph, Till Leißner, Alwin Klick, Jacek Fiutowski, Jörn Willers Radke, Martin Thomaschewski, Jakob Kjelstrup-Hansen, Horst-Günter Rubahn, and Michael Bauer. "The complex dispersion relation of surface plasmon polaritons at gold/para-hexaphenylene interfaces." Applied Physics B 116, no. 3 (December 11, 2013): 585–91. http://dx.doi.org/10.1007/s00340-013-5737-2.

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34

Du, Ying-Xiang, Zhong-Jun Xu, Chung-Gin Hsu, and Jiao-Mai Pan. "Study on the complex-formation reaction of yttrium with para-methyl-chlorophosphonazo(CPApM)." Chinese Journal of Chemistry 9, no. 3 (August 27, 2010): 199–204. http://dx.doi.org/10.1002/cjoc.19910090302.

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35

Gilkey, Peter, and Stana Nikcevic. "4-dimensional (para)-Kähler-Weyl structures." Publications de l'Institut Math?matique (Belgrade) 94, no. 108 (2013): 91–98. http://dx.doi.org/10.2298/pim1308091g.

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We give an elementary proof of the fact that any 4-dimensional para-Hermitian manifold admits a unique para-Kahler-Weyl structure. We then use analytic continuation to pass from the para-complex to the complex setting and thereby show that any 4-dimensional pseudo-Hermitian manifold also admits a unique Kahler-Weyl structure.
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36

KRYŃSKI, WOJCIECH. "Webs and the Plebański equation." Mathematical Proceedings of the Cambridge Philosophical Society 161, no. 3 (May 16, 2016): 455–68. http://dx.doi.org/10.1017/s0305004116000463.

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AbstractWe consider 3-webs, hyper-para-complex structures and integrable Segre structures on manifolds of even dimension and generalise the second heavenly Plebański equation in the context of higher-dimensional hyper-para-complex structures. We also characterise the Segre structures admitting a compatible hyper-para-complex structure in terms of systems of ordinary differential equations.
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37

Starck, Matthieu, Jack D. Fradgley, Davide F. De Rosa, Andrei S. Batsanov, Maria Papa, Michael J. Taylor, Janet E. Lovett, Jacob C. Lutter, Matthew J. Allen, and David Parker. "Versatile Para‐Substituted Pyridine Lanthanide Coordination Complexes Allow Late Stage Tailoring of Complex Function." Chemistry – A European Journal 27, no. 71 (November 16, 2021): 17921–27. http://dx.doi.org/10.1002/chem.202103243.

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38

Zagane, Abderrahim. "Para-Complex Norden Structures in Cotangent Bundle Equipped with Vertical Rescaled Cheeger–Gromoll Metric." Zurnal matematiceskoj fiziki, analiza, geometrii 17, no. 3 (June 25, 2021): 388–402. http://dx.doi.org/10.15407/mag17.03.388.

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39

Li, Hanlin, Donglan Liu, Liang Chen, Haiyan Xu, and Hongfei Lu. "Alkoxylation of para-Quinone Methides via Bismuth Complex Catalyzed 1,6-Addition Reactions of Alcohols." Chinese Journal of Organic Chemistry 41, no. 8 (2021): 3279. http://dx.doi.org/10.6023/cjoc202103018.

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40

Maraner, Paolo, and Jiannis K. Pachos. "Conformally flat Kaluza–Klein spaces, pseudo-/para-complex space forms and generalized gravitational kinks." Journal of Geometry and Physics 59, no. 9 (September 2009): 1314–25. http://dx.doi.org/10.1016/j.geomphys.2009.06.013.

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41

Ratovskii, G. V., O. A. Shivernovskaya, T. L. Petrova, D. D. Chuvashev, A. I. Smirnov, V. P. Zubov, and V. I. Smirnov. "Complex formation between maleic anhydride and the vinyl ethers of phenol and para-methoxyphenol." Bulletin of the Academy of Sciences of the USSR Division of Chemical Science 37, no. 7 (July 1988): 1388–93. http://dx.doi.org/10.1007/bf00962747.

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42

Danylyuk, Oksana, Florent Perret, Anthony W. Coleman, and Kinga Suwinska. "The Solid-State Complex of para-Sulphonato-Calix[8]Arene Anion with Dimethylammonium Cations." Open Crystallography Journal 1, no. 1 (June 13, 2008): 18–23. http://dx.doi.org/10.2174/1874846500801010018.

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43

Thackeray, JR, and B. Ganetzky. "Developmentally regulated alternative splicing generates a complex array of Drosophila para sodium channel isoforms." Journal of Neuroscience 14, no. 5 (May 1, 1994): 2569–78. http://dx.doi.org/10.1523/jneurosci.14-05-02569.1994.

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44

Willnauer, Christa, and Uwe Birkenheuer. "Quantum chemical ab initio calculations of correlation effects in complex polymers: Poly(para-phenylene)." Journal of Chemical Physics 120, no. 24 (June 22, 2004): 11910–18. http://dx.doi.org/10.1063/1.1740748.

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45

Pandiarajan, Devaraj, and Rengan Ramesh. "Catalytic transfer hydrogenation of ketones by ruthenium(II) cyclometallated complex containing para-chloroacetophenone thiosemicarbazone." Inorganic Chemistry Communications 14, no. 5 (May 2011): 686–89. http://dx.doi.org/10.1016/j.inoche.2011.02.006.

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46

Perret, Florent, Stéphanie Guéret, Oksana Danylyuk, Kinga Suwinska, and Anthony W. Coleman. "A stepped bilayer packing motif for para-sulphonatocalix[4]arene: The solid-state structure of the para-sulphonatocalix[4]arene–triethylamine complex." Journal of Molecular Structure 797, no. 1-3 (September 2006): 1–4. http://dx.doi.org/10.1016/j.molstruc.2006.02.058.

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47

Lazar, Adina, Eric Da Silva, Alda Navaza, Carole Barbey, and Anthony W. Coleman. "A new packing motif for para-sulfonatocalix[4]arene: the solid state structure of the para-sulfonatocalix[4]arene d-arginine complex." Chemical Communications, no. 19 (2004): 2162. http://dx.doi.org/10.1039/b408863h.

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48

Smolentsev, Nikolay K. "Left-invariant para-Kahler structures on six-dimensional nilpotent Lie groups." Vestnik Tomskogo gosudarstvennogo universiteta. Matematika i mekhanika, no. 78 (2022): 38–48. http://dx.doi.org/10.17223/19988621/78/3.

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Left-invariant para-complex structures on six-dimensional nilpotent Lie groups are considered. A complete list of six-dimensional nilpotent Lie groups that admit para-Kähler structures is obtained, explicit expressions for para-complex structures are found, and curvature properties of associated para-Kähler metrics are investigated. It is shown that paracomplex structures are nilpotent and the corresponding para-Kähler metrics are Ricci-flat.
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49

NOURMOHAMMADIFAR, L., and E. PEYGHAN. "COMPLEX PRODUCT STRUCTURES ON HOM-LIE ALGEBRAS." Glasgow Mathematical Journal 61, no. 1 (March 12, 2018): 69–84. http://dx.doi.org/10.1017/s001708951800006x.

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AbstractIn this paper, we introduce the notion of complex product structures on hom-Lie algebras and show that a hom-Lie algebra carrying a complex product structure is a double hom-Lie algebra and it is also endowed with a hom-left symmetric product. Moreover, we show that a complex product structure on a hom-Lie algebra determines uniquely a left symmetric product such that the complex and the product structures are invariant with respect to it. Finally, we introduce the notion of hyper-para-Kähler hom-Lie algebras and we present an example of hyper-para-Kähler hom-Lie algebras.
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50

Caldwell, Sharon L., Joe B. Gilroy, Rajsapan Jain, Evan Crawford, Brian O. Patrick, and Robin G. Hicks. "Synthesis and redox properties of a phosphine-subsituted para-dioxolene and its bimetallic palladium complex." Canadian Journal of Chemistry 86, no. 10 (October 1, 2008): 976–81. http://dx.doi.org/10.1139/v08-127.

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Oxidation of 2,5-bis(diphenylphosphino)-1,4-hydroquinone (8) with iodobenzene diacetate produces the corresponding bis(phosphine) substituted benzoquinone (9), the first phosphine-substitued quinone. Cyclic voltammetry studies reveal that the redox functionality of the quinone unit in 9 is retained, and the reduction potentials render this compound slightly more easily reduced than the parent p-benzoquinone. Reaction of the precursor hydroquinone 8 with Pd(hfac)2 affords a binuclear complex 10 with the hydroquinonate ligand bridging two Pd(hfac) substrates. The redox activity of the bridging dioxolene ligand is retained in complex 10, although there are significant changes in the redox potentials relative to those of the free quinone 9. Chemical oxidation of 10 with AgPF6 yields a persistent cationic complex 11, which, based on EPR and electronic spectroscopy, can be formulated as containing a bridging semiquinone ligand.Key words: p-quinones, phosphines, bridging ligands, redox properties.
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