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1.
Porous silicon nitride ceramics were prepared via sintered reaction bonded silicon nitride at 1680 °C. The grain size of nitrided Si3N4 and diameter of post-sintered β-Si3N4 are controlled by size of raw Si. Porosity of 42.14–46.54% and flexural strength from 141 MPa to 165 MPa were obtained. During post-sintering with nano Y2O3 as sintering additive, nano Y2O3 can promote the formation of small β-Si3N4 nuclei, but the large amount of β-Si3N4 (>20%) after nitridation also works as nuclei site for precipitation, in consequence the growth of fine β-Si3N4 grains is restrained, the length is shortened, and the improvement on flexural strength is minimized. The effect of nano SiC on the refinement of the β-Si3N4 grains is notable because of the pinning effect, while the effect of nano C on the refinement of the β-Si3N4 grains is not remarkable due to the carbothermal reaction and increase in viscosity of the liquid phase.  相似文献   

2.
《Ceramics International》2023,49(13):21815-21824
Silicon nitride (Si3N4) ceramics, with different ratios of fine and coarse α-Si3N4 powders, were prepared by spark plasma sintering (SPS) and heat treatment. Further, the influence of coarse α-Si3N4 powder on densification, microstructure, mechanical properties, and thermal behavior of Si3N4 ceramics was systematically investigated. Compared with fine particles, coarse particles exhibit a slower phase transition rate and remain intact until the end of SPS. The remaining large-sized grains of coarse α-Si3N4 induce extensive growth of neighboring β-Si3N4 grains and promote the development of large elongated grains. Noteworthy, an appropriate number of large elongated grains distributed among fine-grained matrix forms bimodal microstructural distribution, which is conducive to superior flexural strength. Herein, Si3N4 ceramics with flexural strength of 861.34 MPa and thermal conductivity of 65.76 W m−1 K−1 were obtained after the addition of 40 wt% coarse α-Si3N4 powder.  相似文献   

3.
Silicon nitride–silicon oxynitride in situ composites were fabricated by plane-strain-compressing dense silicon nitrides, starting from 93 wt.% ultrafine β-Si3N4 and 7 wt.% cordierite, at 1600 °C under a constant load of 40 MPa and subsequent annealing at 1750 °C for 30 min. The resulting composites featured a microstructure of elongated Si2N2O grains (∼0.64 μm in diameter and ∼5.5 in aspect ratio) dispersed in a fine-grained β-Si3N4 matrix (∼ 0.30μm in diameter and ∼3.5 in aspect ratio), with the amount of Si2N2O, which had relatively strong textures, being strain-dependent. The mechanical properties were found to be improved due to the development of elongated Si2N2O grains, the texture formation, and the coarsening of β-Si3N4. Fracture toughness, however, was still low (∼5.2 MPa m1/2) for these composites in comparison to self-reinforced silicon nitrides, resulted from the strong Si2N2O-matrix interfacial bond and nearly equiaxed β-Si3N4 with a small grain size. Anticipated property anisotropies were clearly observed as a result of the textured microstructure.  相似文献   

4.
《Ceramics International》2017,43(13):10057-10065
The surface characteristics, particle size distribution and impurities of starting Si3N4 powders exert a very significant influence on the microstructure of sintered silicon nitride based ceramics. Even a change of the processing conditions such as milling liquid media (water or isopropyl alcohol) and milling time can have a substantial effect on particle surface groups, and hence on the microstructure of sintered samples. In this study, SEM, XRD, FTIR, BET, elemental analysis and laser diffraction techniques were used for the comprehensive characterization of Si3N4 powders which were produced by diimide, direct nitridation and combustion synthesis, in as received state, and after milling in different liquid media (aqueous or alcohol), for various milling durations. The correlation of the surface characteristics and properties of the Si3N4 powders with sintering behavior, and microstructural evolution, densification and phase assemblages of the resulting SiAlON ceramics were reported. The milling conditions affected the surface chemistry of Si3N4 powders and the subsequent microstructural evolution. The microstructures evolved from the coarser β-Si3N4 powders were coarser, but the fine β-Si3N4 powders yielded a bimodal microstructure. The critical particle diameter of the β-Si3N4 powder for the formation of needle like SiAlON grains was determined to be less than 0.5 µm.  相似文献   

5.
Si3N4 powders were prepared by combustion synthesis with 1- and 3-μm α-Si3N4, β-Si3N4 diluent and BN inert diluent. The maximum temperatures of samples with boron nitride (BN) as a diluent are about 1500–1600°C lower than that of samples with α-Si3N4 and β-Si3N4 as diluents are about 1600–1800°C. Moreover, the newly formed α-Si3N4 contents in the synthesized products with BN as diluent over 90 wt% are much higher than those with α-Si3N4 and β-Si3N4 as diluent about 20–40 wt%. The strip-like α-Si3N4, rod-like β-Si3N4 grains, and radiative shaped grains can be observed in the synthesized products. Finally, the effect of the diluent on the α-phase content of combustion synthesized Si3N4 is discussed, which provides key guidance for preparing Si3N4 powders with high α-phase content.  相似文献   

6.
Si3N4 ceramics with high thermal conductivity and outstanding mechanical properties were prepared by adding β-Si3N4 seeds and nanophase α-Si3N4 powders as modifiers. The introduction of β-Si3N4 seeds enhanced the growth of β-Si3N4 grains. Owing to the interlocked structure induced by the β-Si3N4 grains, the fracture toughness of Si3N4 ceramics reached a high value of 7.6 MPa·m1/2; also, the large-sized grains increased the contact possibility of Si3N4 grains, improving the thermal conductivity of Si3N4 ceramics (64 W/(m·K)). Because of the introduction of nanophase α-Si3N4, the flexural strength, fracture toughness, and thermal conductivity of the Si3N4 ceramics increased to 754 MPa, 7.2 MPa·m1/2, and 54 W/(m·K), respectively. According to the analysis of the growth kinetics of Si3N4 grains, the rapid growth of Si3N4 grains was ascribed to the reduction in the activation energy resulting from the introduction of β-Si3N4 seeds and nanophase α-Si3N4.  相似文献   

7.
A novel ZrSi2–MgO system was used as sintering additive for fabricating high thermal conductivity silicon nitride ceramics by gas pressure sintering at 1900°C for 12 hours. By keeping the total amount of additives at 7 mol% and adjusting the amount of ZrSi2 in the range of 0-7 mol%, the effect of ZrSi2 addition on sintering behaviors and thermal conductivity of silicon nitride were investigated. It was found that binary additives ZrSi2–MgO were effective for the densification of Si3N4 ceramics. XRD observations demonstrated that ZrSi2 reacted with native silica on the Si3N4 surface to generate ZrO2 and β-Si3N4 grains. TEM and in situ dilatometry confirmed that the as formed ZrO2 collaborated with MgO and Si3N4 to form Si–Zr–Mg–O–N liquid phase promoting the densification of Si3N4. Abnormal grain growth was promoted by in situ generated β-Si3N4 grains. Consequently, compared to ZrO2-doped materials, the addition of ZrSi2 led to enlarged grains, extremely thin grain boundary film and high contiguity of Si3N4–Si3N4 grains. Ultimately, the thermal conductivity increased by 34.6% from 84.58 to 113.91 W·(m·K)−1 when ZrO2 was substituted by ZrSi2.  相似文献   

8.
Mean-field micromechanics model, the rule of mixture is applied to the prediction of the thermal conductivity of sintered β-Si3N4, considering that the microstructure of β-Si3N4 is composed of a uniform matrix phase (which contains grain boundaries and small grains of Si3N4) and the purified large grains (⩾2 μm in diameter) of Si3N4. Experimental results and theoretical calculations showed that the thermal conductivity of Si3N4 is controlled by the amount of the purified large grains of Si3N4. The present study demonstrates that the high thermal conductivity of β-Si3N4 can be explained by the precipitation of high purity grains of β-Si3N4 from liquid phase.  相似文献   

9.
《Ceramics International》2022,48(20):30376-30383
In this study, α/β-Si3N4 composite ceramics with high hardness and toughness were fabricated by adopting two different novel ternary additives, ZrN–AlN–Al2O3/Y2O3, and spark plasma sintering at 1550 °C under 40 MPa. The phase composition, microstructure, grain distribution, crack propagation process and mechanical properties of sintered bulk were investigated. Results demonstrated that the sintered α/β-Si3N4 composite ceramics with ZrN–AlN–Al2O3 contained the most α phase, which resulted in a maximum Vickers hardness of 18.41 ± 0.31 GPa. In the α/β-Si3N4 composite ceramics with ZrN–AlN–Y2O3 additives, Zr3AlN MAX-phase and ZrO phase were found and their formation mechanisms were explained. The fracture appearance presented coarser elongated β-Si3N4 grains and denser microstructure when 20 wt% TiC particles were mixed into Si3N4 matrix, meanwhile, exhibited maximum mean grain diameter of 0.98 ± 0.24 μm. As a result, the compact α/β-Si3N4 composite ceramics containing ZrN–AlN–Y2O3 additives and TiC particles displayed the optimal bending strength and fracture toughness of 822.63 ± 28.75 MPa and 8.53 ± 0.21 MPa?m1/2, respectively. Moreover, the synergistic toughening of rod-like β-Si3N4 grains and TiC reinforced particles revealed the beneficial effect on the enhanced fracture toughness of Si3N4 ceramic matrix.  相似文献   

10.
Si3N4 ceramic with ultrafine fibrous grains are expected to exhibit remarkable mechanical properties. In this work, highly porous Si3N4 ceramic monoliths composed of ultrafine fibrous grains were developed via a novel vapor-solid carbothermal reduction nitridation (V-S CRN) reaction between SiO vapor and green bodies comprised of carbon nanotubes (CNTs), α-Si3N4 diluents and Y2O3 in a N2 atmosphere. The unique fibrous grains-interconnected structure was developed through in-situ formation of Si3N4 and following liquid phase sintering. The porous Si3N4 monoliths with porosity of 61–78% was developed by controlling the contents of α-Si3N4 diluents and densities of the CNT green bodies. With increasing of the α-Si3N4 contents, Si3N4 fibrous grains with an aspect ratio of approximate or higher than 20 could be achieved, and the grains were gradually refined. For the samples with 40 wt% α-Si3N4, the minimum mean grain diameter and pore size of 164 nm and 0.79 μm were achieved, respectively, and the resultant porous Si3N4 monolith exhibited a flexural strength of as high as 73–102 MPa with the porosity of 61–73%, which is much higher than that of the reported in literature. The improvement of mechanical strength could be attributed to the densely interconnected bird's nests structure formed by the ultrafine fibrous grains. The effects of the α-Si3N4 diluents on the resulting porous Si3N4 monolith via this method were analyzed.  相似文献   

11.
Alpha phase silicon nitride (α-Si3N4) powders were synthesized by combustion reaction of the in-situ nano-SiO2 coated Si and Si3N4 reactants with pressurized nitrogen. The combustion temperature profile as well as the product phase composition and morphology were investigated. Regardless of the combustion temperature reached as high as 1800 °C, up to 86 wt% α-Si3N4 was obtained in the combustion-synthesized product from the reactants with only 6 wt% SiO2 addition, which is three times higher than that of without SiO2 coating, meanwhile, the morphology of Si3N4 grains changed from rod-like to equiaxed grain,indicating the in-situ coated SiO2 tailored the nitridation reaction path of Si successfully by enhancing the silicon monoxide (SiO) gas phase formation.  相似文献   

12.
《Ceramics International》2023,49(16):26331-26337
Silicon nitride (Si3N4) ceramics were prepared by gas-pressure sintering using Y2O3–MgSiN2 as a sintering additive. The densification behavior, phase transition, and microstructure evolution were investigated in detail, and the relevance between the microstructure and the performance (including thermal conductivity and mechanical properties) was further discussed. A significant change from a bimodal to a homogeneous microstructure and a decreased grain size occurred with increasing Y2O3–MgSiN2 content. When the small quantity of preformed β-Si3N4 nuclei grew preferentially and rapidly in a short time, an obvious bimodal microstructure was obtained in the sample with 4 mol% and 6 mol% Y2O3–MgSiN2. When more β-Si3N4 nuclei grew at a relatively rapid rate, the sample with 8 mol% Y2O3–MgSiN2 showed a microstructure consisting of numerous abnormally grown β-Si3N4 grains and small grains. When more β-Si3N4 nuclei grew simultaneously and slowly, there was a homogeneous microstructure and smaller grains in the sample containing 10 mol% Y2O3–MgSiN2. Benefitting from the completely dense, significant bimodal microstructure, low grain boundary phase, and excellent Si3N4–Si3N4 contiguity, the sample containing 6 mol% Y2O3–MgSiN2 exhibited great comprehensive performance, with a maximum thermal conductivity and fracture toughness of 84.1 W/(m⋅K) and 8.97 MPa m1/2, as well as a flexural strength of 880.2 MPa.  相似文献   

13.
《Ceramics International》2016,42(10):11593-11597
A new gelling system based on the polymerization of hydantion epoxy resin and 3,3′-Diaminodipropylamine (DPTA) was successfully developed for fabricating silicon nitride (Si3N4) ceramics. The effects of pH value, the dispersant content, solid volume fraction and hydantion epoxy resin amount on the rheological properties of the Si3N4 slurries were investigated. The relative density of green body obtained from the solid loading of 52 vol% Si3N4 slurry reached up to 62.7%. As the concentration of hydantion epoxy resin increased from 5 wt% to 20 wt%, the flexural strength of Si3N4 green body enhanced from 5.3 MPa to 31.6 MPa. After pressureless sintering at 1780 °C for 80 min, the sintered samples exhibited the unique interlocking microstructure of elongated β-Si3N4 grains, which was beneficial to improve the mechanical properties of Si3N4 ceramics. The relative density, flexural strength and fracture toughness of Si3N4 ceramics reached 97.8%, 687 MPa and 6.5 MPa m1/2, respectively.  相似文献   

14.
Effect of impurities in the crystal lattice and microstructure on the thermal conductivity of sintered Si3N4 was investigated by the use of high-purity β-Si3N4 powder. The sintered materials were fabricated by gas pressure sintering at 1900 °C for 8 and 48 h with addition of 8 wt.% Y2O3 and 1 wt.% HFO2. A chemical analysis was performed on the loose Si3N4 grains taken from sintered materials after the chemical treatment. Aluminum was not removed from Si3N4 grains, which originated from the raw powder of Si3N4. The coarse grains had fewer impurities than the fine grains. Oxygen was the major impurity in the grains, and gradually decreased during grain growth. The thermal conductivity increased from 88 Wm−1 K−1 (8 h) to 120 Wm−1 K−1 (48 h) as the impurities in the crystal lattice decreased. Purification by grain growth thus improved the thermal conductivity, but changing grain boundary phases might also influence the thermal conductivity.  相似文献   

15.
《Ceramics International》2017,43(2):2150-2154
Sintered Si3N4 ceramics were prepared from an ɑ-Si3N4/β-Si3N4 whiskers composite powder in-situ synthesized via carbothermal reduction at 1400–1550 °C in a nitrogen atmosphere from SiO2, C, Ni, and NaCl mixture. Reaction temperatures and holding time for the composite powder, and mechanical properties of sintered Si3N4 were investigated. In the synthesized composite powder, the in-situ β-Si3N4 whiskers displayed an aspect ratio of 20–40 and a diameter of 60–150 nm, which was mainly dependent on the synthesis temperature and holding time. The flexural strength, fracture toughness and hardness of the sintered Si3N4 material reached 794±136 MPa, 8.60±1.33 MPa m1/2 and 19.00±0.87 GPa, respectively. The in-situ synthesized β-Si3N4 whiskers played a role in toughening and strengthening by whiskers pulling out and crack deflection.  相似文献   

16.
Thermal conductivity of Si3N4 containing large β-Si3N4 particles as seeds for grain growth was investigated. Seeds addition promotes growth of β-Si3N4 grains during sintering to develop the duplex microstructure. The thermal conductivity of the material sintered at 1900 °C improved up to 106 W m−1 K−1, although that of unseeded material was 77 Wm−1 K−1. Seeds addition leads to reduction of the sintering temperature with developing the duplex microstructure and with improving the thermal conductivity, which benefits in terms of production cost of Si3N4 ceramics with thermal conductivity. ©  相似文献   

17.
In this paper, silicon nitride (Si3N4) ceramics with black color and high toughness were fabricated by gas pressure sintering and characterized by X-ray diffraction, Raman, scanning electron microscopy, EDS, and transmission electron microscopy. The in situ formed cobalt silicide was confirmed to contribute to the black color through the introduction of CoO. Due to the addition of CoO, the growth of β-Si3N4 grains is promoted, forming elongated grains, and eventually forms the self-reinforcing microstructure. However, with adding excessive CoO, interfacial debonding is found between cobalt silicide and Si3N4 matrix and a decrease in strength was resulted. The optimum composition is 1 mol% CoO in Si3N4, with the fracture toughness of 9.9 ± 0.3 MPa m1/2, flexural strength of 826.1 ± 46.0 MPa, and a much darker black color. The mechanism of color formation is discussed where the black color derives mainly from the metallic silicon and additionally the porosity.  相似文献   

18.
Two types of β-Si3N4 were sintered at 1900 °C one for 8 h and the other for 36 h by using Yb2O3 and ZrO2 as sintering additives. The latter specimen was further annealed at 1700 °C for 100 h to promote grain growth. The microstructures of the sintered materials were investigated by SEM, TEM, and EDS. The thermal conductivities of the specimens were 110 and 150 Wm−1K−1, respectively. The sintered material which possessed 110 Wm−1K−1 had numerous small precipitates that consisted of Yb, O and N elements and internal dislocations in the β-Si3N4 grains. In the sintered material with 150 Wm−1K−1 neither precipitates nor dislocations were observed in the grains. The microscopic evidence indicates that the improvement in the thermal conductivity of the β-Si3N4 was attributable to the reduction of internal defects of the β-Si3N4 grains with sintering and annealing time as the grains grew.  相似文献   

19.
《Ceramics International》2020,46(15):23734-23741
Silicon nitride (Si3N4) particles with different morphologies have been used in many fields. In this work, α-Si3N4 whiskers and granular particles with high-phase purity were successfully tailored by the controllable crystallisation process of amorphous Si3N4 powders under different N2 pressure. Impressively, α-Si3N4 whiskers were prepared by simply heat treating amorphous Si3N4 powders at 1550 °C for 2 h under the low N2 pressure of 0.2 MPa, whereas equiaxed α-Si3N4 particles with uniform size of ~280 nm were obtained under an elevated N2 pressure of 2.0 MPa. With the evaluated N2 pressures and temperatures, large scale α-Si3N4 whiskers or equiaxed α-Si3N4 particles could be produced. The growth mechanisms of the α-Si3N4 particles with distinct morphologies were rationally proposed, and these consist of two main growth processes. First, amorphous Si3N4 powders decomposed into Si(g) and N2(g) under high-temperature treatment. Subsequently, N2(g) dominated the recombination of the evaporated chemical with the Si3N4 molecule. The initial N2 concentration, which plays a key role in tailoring the shape and size of products, was controlled by the N2 pressure.  相似文献   

20.
《Ceramics International》2017,43(3):3435-3438
Graphene nanoribbons (GNRs) were obtained by unzipping multiwall carbon nanotubes (MWCNTs). Three different silicon nitride-carbon nanostructures were prepared by spark plasma sintering (SPS): ceramic composites that contained 1 wt% carbon nanofibers (CNFs), 1 wt% MWCNTs and 1 wt% GNRs respectively. The α to β-Si3N4 transformation ratio and thermal diffusivity of GNR/Si3N4 composites were higher than both CNF/Si3N4 composites and MWCNT/Si3N4 composites. Furthermore, the higher thermal diffusivities of GNR/Si3N4 composites can primarily be attributed to the higher number of elongate β-Si3N4 grains.  相似文献   

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