999精品在线视频,手机成人午夜在线视频,久久不卡国产精品无码,中日无码在线观看,成人av手机在线观看,日韩精品亚洲一区中文字幕,亚洲av无码人妻,四虎国产在线观看 ?

M3型硅酸三鈣固溶體超晶胞與偽六方亞晶胞之間的取向關系及轉換矩陣

2016-12-01 01:32:17閔輝華徐峰呂憶農楊靜丁林飛蘇凡朱健民南京林業大學電子顯微鏡室南京007東南大學MEMS教育部重點實驗室南京0096南京工業大學材料化學工程國家重點實驗室南京0009南京大學固體微結構物理國家重點實驗室南京009
無機化學學報 2016年1期
關鍵詞:南京實驗室

閔輝華 徐峰 呂憶農 楊靜 丁林飛 蘇凡 朱健民(南京林業大學電子顯微鏡室,南京007)(東南大學MEMS教育部重點實驗室,南京0096)(南京工業大學材料化學工程國家重點實驗室,南京0009)(南京大學固體微結構物理國家重點實驗室,南京009)

M3型硅酸三鈣固溶體超晶胞與偽六方亞晶胞之間的取向關系及轉換矩陣

閔輝華*,1,2徐峰2呂憶農3楊靜1丁林飛1蘇凡1朱健民4
(1南京林業大學電子顯微鏡室,南京210037)
(2東南大學MEMS教育部重點實驗室,南京210096)
(3南京工業大學材料化學工程國家重點實驗室,南京210009)
(4南京大學固體微結構物理國家重點實驗室,南京210093)

通過透射電子顯微鏡(TEM)對M3型硅酸三鈣(C3S)固溶體進行了研究。基于偽六方亞晶胞(空間群R3m,a=0.705 9 nm,b= 0.705 5 nm,c=2.492 4 nm,α=89.79°,β=90.04°,γ=120.14°)對選區電子衍射花樣(SAED)和高分辨透射電子顯微鏡(HRTEM)像進行了分析。結果表明:在M 3型硅酸三鈣固溶體中,由超結構產生的衍射斑點沿著[117]H*調制波矢量方向,具有一維調制結構特征,并且可以表示為h a*+k b*+l c*+m/[6(-a*+b*+7c*)],其中m=±1、±2和±3。基于M3超晶胞(空間群Cm,a=3.310 8 nm,b=0.703 6 nm,c=1.852 1 nm,β=94.137°)對SAED花樣和HRTEM像進行了模擬,最終確立了M3超晶胞和偽六方亞晶胞之間的取向關系,即:(600)M3、(020)M3和(006)M3分別相當于(112)H、(110)H和(117)H,[100]M3//[772]H、[010]M3//[110]H以及[001]M3//[111]H。此外,還確定了M3超晶胞和偽六方亞晶胞之間的轉換矩陣。

硅酸三鈣;調制結構;取向關系;透射電子顯微術

0 Introduction

Solid solutions of tricalcium silicate(C3S)are one of the principal components of Portland cement clinker,and pure C3S is known to exist in seven modifications:three triclinic(T1,T2,T3),three monoclinic(M1,M2,M3),and one rhombohedral(R). These modifications are reported to appear via successive,reversible phase transitions when heated, occurring in the following sequence[1-3]:

However,the presence of foreign ions may stabilize some of the high-temperature forms at room temperature.For instance,sulphate or magnesium impurities induce the stabilization of M1 and M3 modifications respectively[2,4].M3 modification was first reported by Jeffery[5]and the cell parameters were a= 3.308 nm,b=0.707 nm,c=1.856 nm,β=94.10°.He determined a pseudohexagonal average structure(Space group R3m;a=0.7 nm,c=2.5 nm)that he considered as a valid approximation for all the true structures. Several years later,Nish and Takéuch[6]established the atomic coordinates of M3 by single-crystal diffraction method.They described an average monoclinic unit cell,referred as

The purpose of this work is to describe the superstructure of the M3 modification in detail,and the orientation relations between M3 supercell and pseudohexagonal subcell will be studied by computer simulation.

1 Experimental

Reagent-grade CaCO3,SiO2and MgO were used as starting materials.CaCO3and SiO2were mixed in a molar ratio of 3∶1 and MgO(2.0%,Mass percentage) was added to the mixture with respect to C3S.Raw materials were mixed and ball-milled by a planetary mill at 250 r·min-1for 4 h and screened through a 120-mesh sieve.Then,the powder was mixed in an agate mortar wetted by ethanol,which was pressed into pellets 30 mm in diameter and 3 mm in thickness. The pellets were heated at 1 500℃for 6 h and then quenched in air.To synthesize a specimen free from dicalcium silicate,the fired pellets were pulverized, pelletized and heated again via the same heating process.

The Resulting product was identified using an XRD device(Model ARL X′TRA,Thermo Electron Co.,America)with Cu Kα radiation(λ=0.154 18 nm) operated at 40 kV and 35 mA.The XRD patterns of the C3S solid solution were recorded in a continuous mode at a scanning rate of 0.1°·min-1.The pseudohexagonal subcell parameters of the C3S solid solution were calculated from the peak positions in the XRD pattern and refined by least-squares method.

The specimen was crushed and dispersed in ethanol.The resulting suspension was scooped onto a copper grids covered with holey carbon film;then the specimen was dried under magnesium lamp.SAEDpatterns and HRTEM images were recorded using a TEM device(Model JEM-2100UHR,JEOL,Tokyo, Japan)at an accelerating voltage of 200 kV.The device was equipped with a double tilt goniometer, where the maximum tilting angle was±20°around the x-and y-axes respectively.

The SAED patterns were calculated using a computer program SingleCrystal(CrystalMaker Software Ltd.,U.K.)and the HRTEM images were simulated using a program MacTempas(Total Resolution Inc.,U.S.A.).The three-dimensional structure model of the orientation relations between M3 supercell and pseudohexagonal subcell was constructed using the program CrystalMaker (CrystalMaker Software Ltd.,U.K.).

2 Results and discussion

2.1XRD study

Two conventional angular windows(2θCu=32°~33° and 2θCu=51°~52°)which were proposed by Bigaré et al.[1]are good indicators of the symmetries of the modifications.In this study,the details of the XRD peaks appearing at the two conventional angular windows for the specimen are given in Fig.1.As shown in the figure,double peaks were observed at the two conventional windows.Compared with the former researches[1,8-9],this specimen was identified as M3.The pseudohexagonal subcell parameters refined by least-squares method based on XRD data were: Space group R3m;a=0.705 9 nm,b=0.705 5 nm,c= 2.492 4 nm,α=89.79°,β=90.04°and γ=120.14°.

Fig.1 Characteristic reflection groups in XRD pattern for C3S doped with MgO(2.0%,Mass percentage)

2.2TEM study

Traditionally,the structural studies are almost based on XRD data.However,some structural details such as modulated structures are easily to be ignored in analysing because of the low intensity of XRD. Furthermore,the angular windows used to identify the modifications are rather similar with each other;it also causes difficulties in study.

In order to further investigate the M3 superstructure features and establish the orientation relations between M3 supercell and pseudohexagonal subcell, the specimen was examined by TEM.The SAED patterns and HRTEM images recorded along different zone axes and the corresponding simulation results were shown in Fig.2~4.All the patterns recorded in this study were indexed based on the pseudohexagonal subcell,the simulated SAED patterns were indexed based on the M3 supercell proposed by Torre[10](Space group Cm;a=3.310 8 nm,b=0.703 6 nm,c=1.852 1 nm,β=94.137°).

Fig.2(a)shows the SAED pattern recorded along [110]Hzone axis and the corresponding indexing reciprocal planes are shown in Fig.2(b).Reflections with higher intensities were responsible for the pseudohexagonal subcell;those with lower intensities (satellite reflections)were attributable to the M3 supercell.The satellite reflections show modulated structure feature with 6 times of subcell dimension along[117]H*and could be expressed as h a*+k b*+ l c*+m/[6(-a*+b*+7c*)],where m=±1,±2 and±3.It was consistent with the results reported by Groves[7]and Urabe[8].Fig.2(c)shows the corresponding HRTEM image,wavy contrasts were observed with a repeat of 1.84 nm parallel to(117)H,which is 6 times greater than the(117)Hspacing.Based on the atomic coordinates established by Torre[10],the SAED pattern and HRTEM image simulated along[010]M3zone axis under a defocus value of-60 nm and thickness of 60 nm are shown in Fig.2(d)and(f)respectively.It is found that the simulated results were consistent with those obtained from experiments.The corresponding reciprocal planes indexed based on M3 supercell areshown in Fig.2(e),which reveals that(117)H,(111)Hand(003)Hare equivalent to(006)M3,(402)M3and(202)M3respectively and[010]M3//[110]H.

Fig.2(a)SAED pattern along[110]Hzone axis;(b)Schematic diagram of indices based on pseudohexagonal subcell; (c)HRTEM image corresponding to(a);(d)Simulated SAED pattern along[010]M3zone axis;(e)Schematic diagram of indices based on M3 supercell;(f)Simulated HRTEM image corresponding to(d)

The SAED pattern in Fig.3(a)was taken along [181]Hzone axis and the corresponding indexing reciprocal planes are shown in Fig.3(b).It is found that the modulated structure feature along this zone axis is the same as it was found along[110]Hzone axis,which is 6 times of subcell dimension along [117]H*and the satellite reflections could be also expressed as h a*+k b*+l c*+m/[6(-a*+b*+7c*)],where m=±1,±2 and±3.Fig.3(c)shows the corresponding HRTEM image,and the wavy contrasts were observed with a repeat of 1.84 nm parallel to(117)H,which is 6 times greater than the(117)Hspacing.The SAED pattern and HRTEM image along[130]M3zone axis were simulated under a defocus value of-60 nm and thickness of 60 nm and are shown in Fig.3(d)and(f) respectively.By contrast,it is found that the simulated results were in good agreement to that observed in experiments.The corresponding reciprocal planes indexed based on M3 supercell are shown in Fig.3(e),which reveals that(117)H,(101)Hand(216)Hare equivalent to(006)M3,(310)M3and(316)M3respectively and[181]H//[130]M3.

Fig.4(a)and(b)show the SAED pattern recorded along[241]Hzone axis and the corresponding indexing reciprocal planes respectively.In this pattern,the satellite reflections show modulated structure feature with 3 times of subcell dimension along[112]H*and they could be expressed as h a*+k b*+l c*±1/[3(-a*+ b*-2c*)].Fig.4(c)shows the corresponding HRTEM image,as shown in the figure,wavy contrasts were observed with a repeat of 1.65 nm parallel to(112)H, which is 3 times greater than the(112)Hspacing.The SAED pattern and HRTEM image along[021]M3zoneaxis were simulated under a defocus value of-60 nm and thickness of 60 nm and are shown in Fig.3(d)and (f)respectively and they were consistent with those obtained from experiments.The corresponding reciprocal planes indexed based on M3 supercell are shown in Fig.4(e),which reveals that(102)H,(210)Hand(112)Hare equivalent to(112)M3,(712)M3and(600)M3respectively and[241]H//[021]M3.

Fig.3(a)SAED pattern along[181]Hzone axis;(b)Schematic diagram of indices based on pseudohexagonal subcell; (c)HRTEM image corresponding to(a);(d)Simulated SAED pattern along[130]M3zone axis;(e)Schematic diagram of indices based on M3 supercell;(f)Simulated HRTEM image corresponding to(d)

Urabe et al.[11]suggested that the coordinates of the superstructure reflections in reciprocal space could be described by the modulated wave vector with the minimum value and he found the one-dimensional type modulated wave vector in T1 superstructure.In this work,the vector along[117]H*with an interval of 0.59 nm-1is the minimum value in the experiment.

Fig.5 shows the schematic diagram of indices based on pseudohexagonal subcell along[110]Hzone axis.As shown in the figure,the coordinates of 1/[3(-a* +b*-2c*)]for the satellite reflections(it is also observed along[241]Hzone axis)could be expressed as-3c*+1/[3(-a*+b*+7c*)].It reveals that the reflections at 1/[3(-a*+b*-2c*)]is a satellite occurs at the 1/3 place between[003]H*and[114]H*,where the line passing through those two points is parallel to the direction of[117]H*.All the satellite reflections observed along other zone axes could be also described in the same way,and could be expressed as:h a*+k b*+l c*+ m/[6(-a*+b*+7c*)],where m=±1,±2 and±3.Therefore, the structural modulation in M3 had the character of a one-dimensional type.

Fig.4(a)SAED pattern along[241]Hzone axis;(b)Schematic diagram of indices based on pseudohexagonal subcell; (c)HRTEM image corresponding to(a);(d)Simulated SAED pattern along[021]M3zone axis;(e)Schematic diagram of indices based on M3 supercell;(f)Simulated HRTEM image corresponding to(d)

Fig.5 Schematic diagram of indices based on pseudohexagonal subcell along[110]Hzone axis

2.3Orientation relations derivation

Whatever the experimental technique,TEM or XRD,the superstructures produce additional weak characteristic Bragg lines.Urabe et al.[11]did an excellent work that they indexed various SAED patterns recorded along different zone axes and finally established the plane orientation relations between pseudohexagonal subcell and T1 supercell.Groves[12]proposed a conversion matrix between M3 supercell and pseudohexagonal subcell planes based on TEM data,but it was not confirmed in later researches.In this work,the TEM results show that(117)H,(112)Hand(101)Hare equivalent to(006)M3,(600)M3and(310)M3respectively.Therefore,the detail orientation relations between M3 supercell and pseudohexagonal subcell planes can be derived via calculation based on vector relations,and they are listed in Table 1.For instance:

Table 1 Plane orientation relations between M 3 supercell and pseudohexagonal subcell

In this study,only one basic crystal axis orientation relationship was directly established from Fig.2 that[010]M3//[110]H.Though the crystal axes orientation relations of[100]M3and[001]M3with respect to pseudohexagonal subcell couldn′t be established directly from TEM data in this work,they can be derived from Table 1 based on zone law.For instance, (600)M3and(020)M3belong to[001]M3zone axis;(112)Hand(110)Hbelong to[111]Hzoneaxis,so we can conclude that[001]M3//[111]H.In the same way,all the crystal axes orientation relations between M3 supercell and pseudohexagonal subcell could be established and they are listed in Table 2.Meanwhile,the conversion matrix between M3 supercell and pseudohexagonal subcell is established as following which disagrees with Groves′result[12]:

In order to directly observe the detail orientation relations between M3 supercell and pseudohexagonal subcell,a three-dimensional structure model was constructed and it is shown in Fig.6.It reveals that the pseudohexagonal subcell could be considered as an average structure in C3S and it extends to yield the supercell along specific directions according to the relations listed in Table 1 and Table 2.

Table 2 Crystal axes orien tation relations between M 3 supercell and pseudohexagonal subcell

Fig.6 Orientation relations between M3 supercell and pseudohexagonal subcell

3 Conclusions

C3S solid solution of M3 was prepared by doping MgO(2.0%,Mass percentage).SAED patterns were analyzed using the peseudohexagonal subcell with the following parameters:space group R3m;a=0.705 9 nm, b=0.705 5 nm,c=2.492 4 nm,α=89.79°,β=90.04°and γ=120.14°.Reflections caused by the superstructure were proven to occur along the modulation wave vector[117]H*with one-dimensional type and could be expressed as h a*+k b*+l c*+m/[6(-a*+b*+7c*)],where m=±1,±2 and±3.The orientation relations between M3 supercell and pseudohexagonal subcell wereestablished that(600)M3,(020)M3and(006)M3are equivalent to(112)H(110)H,and(117)Hrespectively, and[100]M3//[772]H,[010]M3//[110]H,and[001]M3//[111]H. Furthermore,the conversion matrix between M3 supercell and pseudohexagonal subcell is established.

[1]Bigaré M,Guinier A,Mazières C,et al.J.Am.Ceram.Soc., 1967,50(11):609-619

[2]Maki I,Chrom S.Il Cemento,1978,3:252-274

[3]Maki I,Kato K.Cem.Concr.Res.,1982,12(1):93-100

[4]Maki I,Goto K.Cem.Concr.Res.,1982,12(3):301-308

[5]Jeffery J W.Acta Crystallogr.,1952,5:26-35

[6]Nish F,Takèuchi Y,Maki I.Z.Kristallogr.,1985,172:297-314

[7]Sinclair W,Groves G.J.Am.Ceram.Soc.,1984,69(5):325-330

[8]Urabe K,Nakano H,Morita H.J.Am.Ceram.Soc.,2002,85 (2):423-429

[9]Courtial M,de Noirfontaine M N,Dunstetter F,et al.Powder Diffr.,2003,18(10):7-15

[10]de La Torre á G,Bruque S,Campo J.Cem.Concr.Res., 2002,32(9):1347-1356

[11]Urabe K,Shirakami T,Iwashima M.J.Am.Ceram.Soc., 2000,83(5):1253-1258

[12]Hudson K E,Groves W.Cem.Concr.Res.,1982,12(1):61-68

Orientation Relations and Conversion M atrix Between M 3 Supercell and Pseudohexagonal Subcell in Tricalcium Silicate Solid Solution

MIN Hui-Hua*,1,2XU Feng2Lü Yi-Nong3YANG Jing1DING Lin-Fei1SU Fan1ZHU Jian-Min4
(1Electron Microscope Lab,Nanjing Forestry University,Nanjing 210037,China)
(2Key Laboratory of MEMS of the Ministry of Education,Southeast University,Nanjing 210096,China)
(3State Key Laboratory of Materials-Oriented Chemical Engineering,Nanjing Tech University,Nanjing 210009,China)
(4State Key Laboratory of Solid State Microstructures,Nanjing University,Nanjing 210093,China)

A M3 modification of tricalcium silicate(C3S)solid solution was investigated using transmission electron microscope(TEM).Selected area electron diffraction(SAED)patterns and high resolution transmission electron microscopy(HRTEM)images were analyzed based on a pseudohexagonal subcell(Space group R3m;a= 0.7059 nm,b=0.705 5 nm,c=2.492 4 nm,α=89.79°,β=90.04°,γ=120.14°).Reflections caused by the superstructure were proven to occur along the modulation wave vector[117]H*with one-dimensional type and could be expressed as h a*+k b*+l c*+m/[6(-a*+b*+7c*)],where m=±1,±2 and±3.SAED patterns and HRTEM images based on the M3 supercell(Space group Cm;a=3.310 8 nm,b=0.703 6 nm,c=1.852 1 nm,β=94.137°)were simulated and finally the orientation relations between M3 supercell and pseudohexagonal subcell were established as follows:(600)M3,(020)M3and(006)M3were equivalent to(112)H,(110)Hand(117)Hrespectively,and[100]M3//[772]H,[010]M3// [110]H,and[001]M3//[111]H.Furthermore,the conversion matrix between M3 supercell and pseudohexagonal subcell was established.

tricalcium silicate;modulated structure;orientation relations;transmission electron m icroscopy

TQ172

A

1001-4861(2016)01-0145-08

10.11862/CJIC.2016.014

2015-09-01。收修改稿日期:2015-10-19。

國家重點基礎研究發展計劃(No.2015CB352106)、江蘇省博士后科研資助計劃項目(No.1402037B)、國家自然科學基金(No.31570576,61574034)和江蘇高校優勢學科建設工程資助。

*通信聯系人。E-mail:hhmin@njfu.edu.cn

猜你喜歡
南京實驗室
南京比鄰
“南京不會忘記”
環球時報(2022-08-16)2022-08-16 15:13:53
電競實驗室
電子競技(2020年4期)2020-07-13 09:18:06
電競實驗室
電子競技(2020年2期)2020-04-14 04:40:38
電競實驗室
電子競技(2019年22期)2019-03-07 05:17:26
電競實驗室
電子競技(2019年21期)2019-02-24 06:55:52
電競實驗室
電子競技(2019年20期)2019-02-24 06:55:35
電競實驗室
電子競技(2019年19期)2019-01-16 05:36:09
南京·九間堂
金色年華(2017年8期)2017-06-21 09:35:27
又是磷復會 又在大南京
主站蜘蛛池模板: 亚洲欧美在线精品一区二区| 亚洲人成网址| 午夜精品久久久久久久2023| 性激烈欧美三级在线播放| 亚洲国产精品一区二区高清无码久久| 久一在线视频| 欧美国产日本高清不卡| 91在线激情在线观看| 91成人在线免费观看| 久久a级片| 国产一级无码不卡视频| 成人午夜在线播放| 欧美亚洲欧美区| 日韩欧美中文字幕在线精品| 色综合天天操| 久久国产精品波多野结衣| 91视频国产高清| 久久鸭综合久久国产| 国产污视频在线观看| 亚洲第一成网站| 亚洲乱码在线播放| 久久综合丝袜长腿丝袜| 亚洲国内精品自在自线官| 日本欧美精品| 国产精品永久久久久| 久久久精品国产SM调教网站| 2022精品国偷自产免费观看| 久操中文在线| 在线a网站| 又爽又大又光又色的午夜视频| 免费国产好深啊好涨好硬视频| 99中文字幕亚洲一区二区| 国产午夜看片| 美女无遮挡免费网站| 亚洲AV成人一区二区三区AV| 亚洲无码在线午夜电影| 国产成人久久综合777777麻豆| 国产日韩久久久久无码精品| 亚洲成aⅴ人在线观看| 久久国产精品夜色| 久久香蕉国产线| 67194成是人免费无码| 国产福利免费视频| 久久99精品久久久久久不卡| 日本午夜三级| 色哟哟国产精品| 丁香六月综合网| 精品国产网| 福利在线不卡一区| 99久久精品国产综合婷婷| 丁香五月激情图片| 国产精品自在在线午夜| 免费又黄又爽又猛大片午夜| 波多野结衣AV无码久久一区| 亚洲狠狠婷婷综合久久久久| 天堂成人在线| 九九热视频精品在线| 亚洲AV色香蕉一区二区| 国产精品黄色片| 欧美性天天| 国产地址二永久伊甸园| 欧美高清国产| 日韩小视频在线观看| 人妻精品久久无码区| 国产精品香蕉在线| 久久久久人妻精品一区三寸蜜桃| 国产亚洲精品无码专| 国产美女久久久久不卡| 中国一级特黄视频| 国产小视频a在线观看| 亚洲欧洲日韩综合| 国产乱人乱偷精品视频a人人澡| 成人国产精品一级毛片天堂| 国产91丝袜| 国产99在线观看| 国产精品亚洲一区二区三区z| 91极品美女高潮叫床在线观看| 欧美在线综合视频| 99在线观看国产| 91精品视频在线播放| 中文字幕亚洲无线码一区女同| 性欧美久久|