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11861por Florentino Silva, Priscila, Coelho, Esio, Chagas Carvalho Alves, Nayane, Andrade Silva, Silmara, Cavalcanti Pereira, Fábio, Santana Albuquerque, Diana“…INTRODUCTION: The aim of this study was to evaluate the canal transportation and centering ability of ProTaper Next (PTN), WaveOne Gold (WOG) and Reciproc Blue (RCB) in simulated curved resin canals. …”
Publicado 2018
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11862por Mohammadzade Akhlaghi, Nahid, Delvarani, Abbas, Norouzi, Vanousheh, Mohebbi, Pooneh, Meraji, Naghmeh“…INTRODUCTION: This study aimed to compare dentinal micro crack formation following root canal instrumentation with ProTaper Universal (PTU) and WaveOne (WO) rotary systems in straight and curved root canals. …”
Publicado 2018
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11863por Skalafouris, Christian, Samer, Caroline, Stirnemann, Jerome, Grosgurin, Olivier, Eggimann, François, Grauser, Damien, Reny, Jean-Luc, Bonnabry, Pascal, Guignard, Bertrand“…During Switzerland’s first wave of COVID-19, clinical pharmacy activities during medical rounds in Geneva University Hospitals were replaced by targeted remote interventions. …”
Publicado 2023
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11864por Ribes, Marta, Montañà, Júlia, Vidal, Marta, Aguilar, Ruth, Nicolás, Patricia, Alfonso, Uxue, Rodrigo, Natalia, Carolis, Carlo, Dobaño, Carlota, Moncunill, Gemma, Chaccour, CarlosEnlace del recurso
Publicado 2023
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11865por Brothers, Sarah, Palayew, Adam, Simon, Caty, Coulter, Abby, Strichartz, Knina, Voyles, Nick, Vincent, Louise“…CONCLUSIONS: During the first wave of COVID-19, methadone patients report decreased in-person clinic attendance and increased take-home doses and use of telehealth for counseling services. …”
Publicado 2023
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11866
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11867“…We present the complete differential decay rates for the process B_s -> J/psi K^+ K^- including S-wave and P-wave angular momentum states for the K^+ K^- meson pair. …”
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11868
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11869
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11870por Verdú-Andrés, S., Artoos, K., Belomestnykh, S., Ben-Zvi, I., Boulware, C., Burt, G., Calaga, R., Capatina, O., Carra, F., Castilla, A., Clemens, W., Grimm, T., Kuder, N., Leuxe, R., Li, Z., McEwen, E.A., Park, H., Powers, T., Ratti, A., Shipman, N., Skaritka, J., Wu, Q., Xiao, B.P., Yancey, J., Zanoni, C.“…The high-luminosity Large Hadron Collider (HL-LHC) will equip one of its interaction points (IP1) with double-quarter wave (DQW) crab cavities. A DQW cavity is a new generation of deflecting rf cavities that stands out for its compactness and broad frequency separation between fundamental and first high-order modes. …”
Publicado 2018
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11871por Polikarpov, Sergey“…In addition, properties of the $P$-wave $\mathrm{B}^0_\mathrm{s}$ mesons are measured, as well as the mass differences $m_{\mathrm{B}^0}-m_{\mathrm{B}^+}$ and $m_{\mathrm{B}^{*0}}-m_{\mathrm{B}^{*+}}$, with the latter being measured for the first time.…”
Publicado 2018
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11872
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11873
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11874por Das, Prottay“…As a result of this non-trivial chiral currents, the elliptic flow of produced particles show charge dependence which is called the Chiral Magnetic Wave (CMW). Here, we present systematic studies of charge dependent Fourier coefficients (v$_{n}$) of azimuthal distribution of particles for Pb-Pb collisions at $\sqrt{ {s}_{NN}}$ = 5.02 TeV. …”
Publicado 2022
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11875por Abdulhamid, M.I., Aboona, B.E., Adam, J., Adams, J.R., Agakishiev, G., Aggarwal, I., Aggarwal, M.M., Ahammed, Z., Aitbaev, A., Alekseev, I., Anderson, D.M., Aparin, A., Aslam, S., Atchison, J., Averichev, G.S., Bairathi, V., Baker, W., Ball Cap, J.G., Barish, K., Bhagat, P., Bhasin, A., Bhatta, S., Bordyuzhin, I.G., Brandenburg, J.D., Brandin, A.V., Cai, X.Z., Caines, H., Calderón de la Barca Sánchez, M., Cebra, D., Ceska, J., Chakaberia, I., Chan, B.K., Chang, Z., Chatterjee, A., Chen, D., Chen, J., Chen, J.H., Chen, Z., Cheng, J., Cheng, Y., Choudhury, S., Christie, W., Chu, X., Crawford, H.J., Dale-Gau, G., Das, A., Daugherity, M., Dedovich, T.G., Deppner, I.M., Derevschikov, A.A., Dhamija, A., Di Carlo, L., Didenko, L., Dixit, P., Dong, X., Drachenberg, J.L., Duckworth, E., Dunlop, J.C., Engelage, J., Eppley, G., Esumi, S., Evdokimov, O., Ewigleben, A., Eyser, O., Fatemi, R., Fazio, S., Feng, C.J., Feng, Y., Finch, E., Fisyak, Y., Flor, F.A., Fu, C., Geurts, F., Ghimire, N., Gibson, A., Gopal, K., Gou, X., Grosnick, D., Gupta, A., Hamed, A., Han, Y., Harasty, M.D., Harris, J.W., Harrison-Smith, H., He, W., He, X.H., He, Y., Hu, C., Hu, Q., Hu, Y., Huang, H., Huang, H.Z., Huang, S.L., Huang, T., Huang, X., Huang, Y., Huang, Y., Humanic, T.J., Isenhower, D., Isshiki, M., Jacobs, W.W., Jalotra, A., Jena, C., Ji, Y., Jia, J., Jin, C., Ju, X., Judd, E.G., Kabana, S., Kabir, M.L., Kalinkin, D., Kang, K., Kapukchyan, D., Keane, D., Kechechyan, A., Kelsey, M., Kimelman, B., Kiselev, A., Knospe, A.G., Ko, H.S., Kochenda, L., Korobitsin, A.A., Kravtsov, P., Kumar, L., Kumar, S., Kunnawalkam Elayavalli, R., Lacey, R., Landgraf, J.M., Lebedev, A., Lednicky, R., Lee, J.H., Leung, Y.H., Lewis, N., Li, C., Li, W., Li, X., Li, Y., Li, Y., Li, Z., Liang, X., Liang, Y., Lin, T., Liu, C., Liu, F., Liu, G., Liu, H., Liu, H., Liu, L., Liu, T., Liu, X., Liu, Y., Liu, Z., Ljubicic, T., Llope, W.J., Lomicky, O., Longacre, R.S., Loyd, E.M., Lu, T., Lukow, N.S., Luo, X.F., Luong, V.B., Ma, L., Ma, R., Ma, Y.G., Magdy, N., Mallick, D., Margetis, S., Matis, H.S., Mazer, J.A., McNamara, G., Mi, K., Minaev, N.G., Mohanty, B., Mondal, M.M., Mooney, I., Morozov, D.A., Mudrokh, A., Nagy, M.I., Nain, A.S., Nam, J.D., Nasim, M., Neff, D., Nelson, J.M., Nemes, D.B., Nie, M., Nigmatkulov, G., Niida, T., Nishitani, R., Nogach, L.V., Nonaka, T., Odyniec, G., Ogawa, A., Oh, S., Okorokov, V.A., Okubo, K., Page, B.S., Pak, R., Pan, J., Pandav, A., Pandey, A.K., Panebratsev, Y., Pani, T., Parfenov, P., Paul, A., Perkins, C., Pokhrel, B.R., Posik, M., Protzman, T., Pruthi, N.K., Putschke, J., Qin, Z., Qiu, H., Quintero, A., Racz, C., Radhakrishnan, S.K., Raha, N., Ray, R.L., Ritter, H.G., Robertson, C.W., Rogachevsky, O.V., Rosales Aguilar, M.A., Roy, D., Ruan, L., Sahoo, A.K., Sahoo, N.R., Sako, H., Salur, S., Samigullin, E., Sato, S., Schmidke, W.B., Schmitz, N., Seger, J., Seto, R., Seyboth, P., Shah, N., Shahaliev, E., Shanmuganathan, P.V., Shao, T., Sharma, M., Sharma, N., Sharma, R., Sharma, S.R., Sheikh, A.I., Shen, D.Y., Shen, K., Shi, S.S., Shi, Y., Shou, Q.Y., Si, F., Singh, J., Singha, S., Sinha, P., Skoby, M.J., Söhngen, Y., Song, Y., Srivastava, B., Stanislaus, T.D.S., Stewart, D.J., Strikhanov, M., Stringfellow, B., Su, Y., Sun, C., Sun, X., Sun, Y., Sun, Y., Surrow, B., Svirida, D.N., Sweger, Z.W., Tamis, A., Tang, A.H., Tang, Z., Taranenko, A., Tarnowsky, T., Thomas, J.H., Tlusty, D., Todoroki, T., Tokarev, M.V., Tomkiel, C.A., Trentalange, S., Tribble, R.E., Tribedy, P., Tsai, O.D., Tsang, C.Y., Tu, Z., Tyler, J., Ullrich, T., Underwood, D.G., Upsal, I., Van Buren, G., Vasiliev, A.N., Verkest, V., Videbæk, F., Vokal, S., Voloshin, S.A., Wang, F., Wang, G., Wang, J.S., Wang, X., Wang, Y., Wang, Y., Wang, Y., Wang, Z., Webb, J.C., Weidenkaff, P.C., Westfall, G.D., Wieman, H., Wilks, G., Wissink, S.W., Wu, J., Wu, J., Wu, X., Wu, Y., Xi, B., Xiao, Z.G., Xie, G., Xie, W., Xu, H., Xu, N., Xu, Q.H., Xu, Y., Xu, Y., Xu, Z., Xu, Z., Yan, G., Yan, Z., Yang, C., Yang, Q., Yang, S., Yang, Y., Ye, Z., Ye, Z., Yi, L., Yip, K., Yu, Y., Zha, W., Zhang, C., Zhang, D., Zhang, J., Zhang, S., Zhang, W., Zhang, X., Zhang, Y., Zhang, Y., Zhang, Y., Zhang, Z.J., Zhang, Z., Zhang, Z., Zhao, F., Zhao, J., Zhao, M., Zhou, C., Zhou, J., Zhou, S., Zhou, Y., Zhu, X., Zurek, M., Zyzak, M.“…The chiral magnetic wave (CMW) has been theorized to propagate in the deconfined nuclear medium formed in high-energy heavy-ion collisions and to cause a difference in elliptic flow (<math><msub><mi>v</mi><mn>2</mn></msub></math>) between negatively and positively charged hadrons. …”
Publicado 2022
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11876
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11877
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11878
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11879por Abele, A, Adomeit, J, Amsler, Claude, Baker, C A, Barnett, B M, Batty, C J, Benayoun, M, Berdoz, A R, Beuchert, K, Bischoff, S, Blüm, H P, Braune, K, Case, T, Cramer, O, Credé, V, Crowe, K M, Degener, T F, Djaoshvili, N, Von Dombrowski, S, Doser, Michael, Dünnweber, W, Ehmanns, A, Engelhardt, D, Faessler, M A, Giarritta, P, Haddock, R P, Heinsius, F H, Heinzelmann, M, Herbstrith, A, Herz, M, Hessey, N P, Hidas, P, Holtzhaussen, C, Hüttmann, K, Jamnik, D, Kalinowsky, H, Kämmle, B, Kammel, P, Kisiel, J, Klempt, E, Koch, H, Kolo, C, Kunze, M, Kurilla, U, Lakata, M T, Landua, Rolf, Matthäy, H, McCrady, R G, Meier, J, Meyer, C A, Ouared, R, Ould-Saada, F, Peters, K, Pick, B, Pietra, C, Pinder, C N, Ratajczak, M, Regenfus, C, Resag, S, Röthel, W, Schmidt, P, Seibert, R, Spanier, S M, Stöck, H, Strassburger, C, Strohbusch, U, Suffert, Martin, Suh, J S, Thoma, U, Tischhäuser, M, Uman, I, Völcker, C, Wallis-Plachner, S, Walther, D, Wiedner, U, Wittmack, KEnlace del recurso
Publicado 1999
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11880“…In order to analyze data on charged pions correlation channels, pi /sup +/(2 pi /sup -/) and pi /sup -/(2 pi /sup +/), we propose new interferometry approach using the Coulomb wave function. We show that to describe adequately data we have to introduce new parameter describing the contribution of pi /sup -/(k/sub 1/) pi /sup +/(k/sub 2/) to pi /sup -/(k/sub 2/) pi /sup +/(k/sub 1/) process. …”
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