| Literature DB >> 26868719 |
Liqiu Guo1,2, Guomin Hua1, Binjie Yang2, Hao Lu1, Lijie Qiao2, Xianguo Yan3, Dongyang Li1.
Abstract
Local electron work function, adhesive force, modulus and deformation of ferrite and austenite phases in a duplex stainless steel were analyzed by scanning force microscopy. It is demonstrated that the austenite has a higher electron work function than the ferrite, corresponding to higher modulus, smaller deformation and larger adhesive force. Relevant first-principles calculations were conducted to elucidate the mechanism behind. It is demonstrated that the difference in the properties between austenite and ferrite is intrinsically related to their electron work functions.Entities:
Year: 2016 PMID: 26868719 PMCID: PMC4751616 DOI: 10.1038/srep20660
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1A X-ray diffraction pattern of 2507 duplex stainless steel.
Figure 2(a) A MFM image of the duplex stainless steel; (b) An AFM topography image and with a line profile of height; (c) Work function mapping with a potential profile; (d) Adhesion mapping with an adhesion profile in nN; (e) Modulus (GPa) mapping; and (f) Deformation mapping (nm).
Measured average values of electron work function (EWF), adhesive force (with AFM Si probe), modulus and deformation of ferrite and austenite of the duplex stainless steel.
| EWF (eV) | Adhesive force (nN) | Modulus (Gpa) | Deformation (nm) | |
|---|---|---|---|---|
| Ferrite | 4.953 | 10.62 | 163.8 | 2.244 |
| Austenite | 5.045 | 12.53 | 182.2 | 1.185 |
Figure 3(a) An atomistic model for surface property calculation; (b) Potential distributions across surface (100), (110) and (111) planes of ferrite bcc structure, respectively; (c) The relation between work function and surface energy for different planes of ferrite bcc structure; (d) Potential distributions across surface (100), (110) and (111) planes of austenite fcc structure, respectively; (e) The relation between work function and surface energy for different planes of austenite fcc structure; (f) Work functions and surface energies of the most stable planes of (110) of ferrite bcc and (111) of austenite fcc structures, respectively.
Calculated equilibrium lattice constant (a), elastic constants (Cij), bulk modulus (B), shear modulus (G), Young’s modulus (E), electron work function (EWF), Poisson’s ratio and surface energy of ferrite bcc structure and austenite fcc structure of the duplex stainless steel.
| a (A) | C11(GPa) | C12(GPa) | C44(GPa) | B(GPa) | G(GPa) | E(GPa) | Poisson’s ratio | EWF (eV) | Surf. energ(J/m2) | |
|---|---|---|---|---|---|---|---|---|---|---|
| Ferrite | 2.829 | 286.9 | 163.9 | 110 | 204.9 | 87.2 | 229 | 0.313 | (100): 3.2 | (100): 3.96 |
| 2.866 | 226 | 140 | 116 | 166 | 80 | 208 | 0.291 | (110): 4.69 | (110): 1.6 | |
| (111): 3.75 | (111): 3.20 | |||||||||
| Austenite | 3.455 | 419.4 | 213.2 | 237.7 | 281.9 | 170 | 424.6 | 0.25 | (100): 4.57 | (100): 3.32 |
| 3.647 | (110): 4.05 | (110): 3.35 | ||||||||
| (111): 5.10 | (111): 2.77 |
Note: superscript.
aData from ref. 25.
bdata from ref. 26.