| Literature DB >> 28934147 |
Xiaoyu Chen1,2, Yongxia Li3, Lan Huang4,5, Dan Zou6, Enxi Wu7, Yanjun Liu8, Yuanyan Xie9, Rui Yao10,11, Songyi Liao12,13, Guangrong Wang14,15, Feng Zheng16,17,18.
Abstract
Nanosized Co-Cr-V alloy powders were synthesized via coprecipitation method. Effects of precipitants ((NH₄)₂C₂O₄·H₂O and Na₂CO₃) and pH were investigated by X-ray diffraction (XRD), Zeta potential analyzer, thermogravimetry-differential scanning calorimetry (TG-DSC), inductively coupled plasma-atomic emission spectrometry (ICP-AES) and scanning electron microscopy (SEM). Co-Cr-V alloy powders were consisted of major face-centered cubic Co (fcc Co) and minor hexagonal close-packed Co (hcp Co). Grain sizes of precursors and Co-Cr-V alloy powders were increased with pH value (7-10) within the ranges of 3~39 and 39~66 nm, respectively. Rod-like or granular Co-Cr-V alloy particles were assembled by interconnected nanograins. At pH = 7, Na₂CO₃ precipitant was found to be beneficial to maintain the desirable composition of Co-Cr-V powders. It was also found that lower pH favors the maintenance of pre-designed composition, while grain coarsens at higher pH. Effects of variation for precipitant and pH on the morphology and composition of Co-Cr-V alloy powder were discussed in detail and relevant mechanism was further proposed.Entities:
Keywords: Co-Cr-V alloy; coprecipitation; morphology coarsening; nanosize; precursor
Year: 2017 PMID: 28934147 PMCID: PMC5666914 DOI: 10.3390/ma10101108
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Figure 1Flow chart of synthesis.
Synthesis conditions and names of samples.
| Samples | Parameters of Synthesis | ||
|---|---|---|---|
| Precursor | Alloy Powder | Precipitant | pH Value |
| PO1 | AO1 | (NH4)2C2O4.H2O | 7 |
| PO2 | AO2 | 9 | |
| PO3 | AO3 | 10 | |
| PC1 | AC1 | Na2CO3 | 7 |
| PC2 | AC2 | 9 | |
| PC3 | AC3 | 10 | |
Figure 2XRD patterns of :(a,b) precursors; and (c,d) Co-Cr-V alloy powders.
Lattice parameters of alloy powders.
| Samples | Lattice Parameters (Å) | ||
|---|---|---|---|
| fcc | hcp | ||
| A = b = c | a = b | c | |
| AO1 | 3.5493 ± 0.0010 | 2.5066 ± 0.0008 | 4.0853 ± 0.0007 |
| AO2 | 3.5482 ± 0.0003 | 2.5068 ± 0.0009 | 4.0886 ± 0.0009 |
| AO3 | 3.5463 ± 0.0009 | 2.5071 ± 0.0012 | 4.0924 ± 0.0017 |
| AC1 | 3.5448 ± 0.0007 | 2.5076 ± 0.0012 | 4.0989 ± 0.0029 |
| AC2 | 3.5455 ± 0.0001 | 2.5063 ± 0.0015 | 4.0913 ± 0.0036 |
| AC3 | 3.5461 ± 0.0006 | 2.5071 ± 0.0010 | 4.0929 ± 0.0023 |
| JCPDS No.89-7093 (fcc Co) | 3.5442 | - | - |
| JCPDS No.89-7094 (hcp Co) | - | 2.5074 | 4.0699 |
Figure 3Relative phase content of fcc Co and hcp Co in samples of: (a) AO1–AO3; and (b) AC1–AC3.
Grain sizes of precursors and alloy powders.
| Precursors | Grain Size (nm) | Alloy Powders | Grain Size (nm) | |
|---|---|---|---|---|
| fcc Co | hcp Co | |||
| PO1 | 13 | AO1 | 40 | 44 |
| PO2 | 15 | AO2 | 41 | 46 |
| PO3 | 39 | AO3 | 48 | 65 |
| PC1 | 3 | AC1 | 39 | 46 |
| PC2 | 4 | AC2 | 59 | 66 |
| PC3 | 6 | AC3 | 43 | 58 |
Figure 4Zeta potential of filtrates as function of pH value.
Figure 5TG and DSC curves for samples of: (a) PO1; and (b) PC1.
Thermal decomposition analysis for precursors.
| Sample | Temperature (°C) | Massloss (wt %) | Phase Evolution | Thermal Effect | |
|---|---|---|---|---|---|
| Exp. | Theor. | ||||
| PO1 | 150~300 | 21 | 20 | CoC2O4·2H2O → CoC2O4 | Endoth./221 °C |
| 300~450 | 45 | 48 | CoC2O4 → Co | Endoth./408 °C | |
| PC1 | 80~150 | 12 | / | Co(CO3)0.5(OH)· | Endoth./90 °C |
| 150~500 | 19 | 18 | Co(CO3)0.5(OH) → CoO + Co(OH)2 | Endoth./238 °C partial Exoth./259 °C | |
Figure 6Yields of: (a) Co; and (b) Cr and V as functions of precipitant and pH.
Chemical compositions of precursors and Co-Cr-V alloy powders.
| Precursor Samples | Calculated Chemical Formula of Precursors | Alloy Samples | Composition of Alloy Powders | Molar Ratio of Co:Cr:V |
|---|---|---|---|---|
| PO1 | (Co0.84Cr0.04V0.04□0.08)C2O4·2H2O | AO1 | Co0.91Cr0.05V0.04 | 8:0.41:0.35 |
| PO2 | (Co0.87Cr0.04V0.03□0.06)C2O4·2H2O | AO2 | Co0.93Cr0.04V0.03 | 8:0.33:0.28 |
| PO3 | (Co0.84Cr0.04V0.04□0.08)C2O4·2H2O | AO3 | Co0.91Cr0.05V0.04 | 8:0.41:0.40 |
| PC1 | (Co0.71Cr0.07V0.07□0.15)(CO3)0.5(OH)·0.11H2O | AC1 | Co0.83Cr0.08V0.09 | 8:0.80:0.86 |
| PC2 | (Co0.73Cr0.06V0.07□0.14)(CO3)0.5(OH)·0.11H2O | AC2 | Co0.84Cr0.08V0.08 | 8:0.72:0.78 |
| PC3 | (Co0.75Cr0.06V0.06□0.13)(CO3)0.5(OH)·0.11H2O | AC3 | Co0.86Cr0.07V0.07 | 8:0.63:0.70 |
Figure 7Morphologies of precursors.
Figure 8Morphologies of Co-Cr-V alloy powders.