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Formation of Cu6Sn5 phase by cold homogenization in nanocrystalline Cu-Sn bilayers at room temperature.

, , , , , , , and . Microelectron. Reliab., (2016)

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Role of the diadic cleft in myocardial contractile control., and . Circulation, 96 (10): 3761--3765 (November 1997)Cardiac contractility and sarcolemmal calcium binding in several cardiac muscle preparations., , and . Am J Physiol, 240 (4): H576--H583 (April 1981)Formation of Cu6Sn5 phase by cold homogenization in nanocrystalline Cu-Sn bilayers at room temperature., , , , , , , and . Microelectron. Reliab., (2016)Calcium concentration and movement in the diadic cleft space of the cardiac ventricular cell., and . Biophys. J., 70 (3): 1169--1182 (March 1996)Calcium in the cardiac diadic cleft. Implications for sodium-calcium exchange., and . Ann. N. Y. Acad. Sci., (April 1996)Binding of Ca2+ and Na+ to sarcolemmal membranes: relation to control of myocardial contractility., , , and . Am J Physiol, 238 (3): H373--H378 (March 1980)Sarcolemmal calcium binding sites in heart: II. Mathematical model for diffusion of calcium released from the sarcoplasmic reticulum into the diadic region., , and . J. Membr. Biol., 129 (1): 59--69 (July 1992)Sarcolemmal calcium binding sites in heart: I. Molecular origin in "gas-dissected" sarcolemma., and . J. Membr. Biol., 129 (1): 49--57 (July 1992)Inner sarcolemmal leaflet Ca$^2+$ binding: its role in cardiac Na/Ca exchange., , and . Biophys. J., 70 (5): 2266--2274 (May 1996)