| Literature DB >> 26060979 |
Zhenyu Zhang1, Song Yang2, Dongming Guo2, Boya Yuan2, Xiaoguang Guo2, Bi Zhang3, Yanxia Huo2.
Abstract
Deformation twinning evolution from a single crystal is conducted by molecular dynamics simulations, to elucidate a twinned face-centered-cubic alloy in an experiment with hardness up to 100 times as that of single crystals, and with ductility simultaneously. Critical twinning stress of cadmium zinc telluride (CdZnTe or CZT) calculated is 1.38 GPa. All the twin boundaries are along the (11-1) orientation, except the one with the (-111) plane that supports the indentation, interpreting the unidirectional and boundary-free characteristics, confirmed in the experiment. Three twin thicknesses after unloading are 3.2, 3.5, and 16 nm, which is consistent with the experimentally repeated pattern of a lamellar twin with thickness larger than 12.7 nm, followed by one or several twins with thicknesses smaller than 12.7 nm. An inverse triangle of a twin combining with three twins generate a synergistic strengthening effect through the hardening and softening functions, illuminating the ultrahigh hardness demonstrated in the experiment. Twinning takes place in loading, and detwinning occurs in unloading, which expounds the high ductility observed in the experiment.Entities:
Year: 2015 PMID: 26060979 PMCID: PMC4462139 DOI: 10.1038/srep11290
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Snapshots of deformation twinning evolution at indentation depths of (a) 5.9 nm, (b) 6.8 nm, (c) 7.4 nm, (d) 8.5 nm, (e) 9.4 nm, and (f) 9.8 nm under the loading conditions used in the MD modeling from a single crystal for an fcc ternary alloy.
Figure 2Snapshot of the MD model after unloading at an indentation depth of 10 nm from a single crystal for an fcc ternary alloy
.
Figure 3Shear stresses as a function of indentation depth for the four rectangles marked in Fig. 1(f).
Shear stress at six indentation depths illustrated in Fig. 1 for four rectangles depicted in Fig. 3.
| Rectangle R1 (GPa) | 1.36 | 1.56 | 1.6 | 1.35 | 1.22 | 1.1 |
| Rectangle R2 (GPa) | 1.25 | 1.35 | 1.52 | 1.28 | 1.32 | 1.19 |
| Rectangle R3 (GPa) | 1.16 | 1.33 | 1.49 | 1.4 | 1.38 | 1.28 |
| Rectangle R4 (GPa) | 1.2 | 1.43 | 1.57 | 1.42 | 1.27 | 1.24 |
Parameters of the Cd-Zn-Te SW potential (Energy in unit eV and length in unit Å)19.
| CdCd | 1.182358 | 2.663951 | 1.527956 | 7.9170 | 0.767446 |
| CdTe | 1.385284 | 2.352141 | 1.810919 | 7.0496 | 0.886125 |
| CdZn | 0.690818 | 2.238699 | 1.812616 | 7.0496 | 1.010632 |
| TeTe | 1.849775 | 2.905254 | 1.594353 | 7.9170 | 0.730728 |
| TeZn | 1.546239 | 2.056363 | 1.907922 | 7.0496 | 1.255846 |
| ZnZn | 1.392961 | 2.367650 | 1.525521 | 7.9170 | 0.767628 |