高温高压光学浮区法单晶炉

高温高压光学浮区法单晶炉


德国ScIDre公司推出的高温高压光学浮区法单晶炉能够提供2200–3000℃以上的生长温度,晶体生长腔压力可达300bar,甚10-5mbar的高真空。适用于生长各种超导材料单晶,介电和磁性材料单晶,氧化物及金属间化合物单晶等。

 


应用领域


适用于生长各种超导材料单晶,介电和磁性材料单晶,氧化物及金属间化合物单晶等。

可实现2600°C及以上高温(高可达3000°C);多种压力规格可选,高压力可达300bar;适用于多种超导材料优质单晶生长#可实现2600°C及以上高温(高可达3000°C);多种压力规格可选,高压力可达300bar;适用于多种磁性材料优质单晶生长#可实现2600°C及以上高温(高可达3000°C);多种压力规格可选,高压力可达300bar;适用于多种材料的优质单晶生长#可实现2600°C及以上高温(高可达3000°C);多种压力规格可选,高压力可达300bar;制备出的优质单晶样品可用于高温高压研究#可实现2600°C及以上高温(高可达3000°C);多种压力规格可选,高压力可达300bar;制备出的优质单晶样品可用于低温强磁场实验#可实现2600°C及以上高温(高可达3000°C);多种压力规格可选,高压力可达300bar;制备出的优质单晶样品可用于强关系机理研究#可实现2600°C及以上高温(高可达3000°C);多种压力规格可选,高压力可达300bar;制备出的优质单晶样品可用于拓扑机理研究#

耐高温、耐高压、高真空、

高透光率、拆装简便的样品腔


由德国弗劳恩霍夫应用光

和精密工程研究所优化设计的高反射率镜面,

镜体位置可由高精度步进马达控制调节


光阑式光强控制器

更方便地调节熔区温度,延长灯泡寿命 


仿真化触屏控制软件

界面友好,操作简单


熔区测温选件测温技术

可实时监测加热区温度


多路独立气路控制选件

可控制N2、O2、Ar、空气等的流量和压力, 

并可对气体进行比例混合与熔区进行反应


气体除杂选件

可使高压氩气中的氧含量达到10-12ppm


退火选件

可对离开熔区的单晶棒提供

高1100℃退火温度和高压氧环境



■  锂离子电池领域新应用


锂离子电池由于具有能量密度高、寿命长、充电快、安全可靠、绿色环保等诸多优异性能,与当今人民的日常生活已密不可分,在手机、电脑、电动车、电动汽车、航空航天等领域均有广泛的应用。其中,Li2FeSiO4作为新一代锂离子电池阴极材料,由于具有价格低廉、环境友好、安全性好等优势,在大型动力锂离子电池应用方面具有良好的前景。然而,Li2FeSiO4材料在不同温度具有不同的结构相(∼ 400 °C :Pmn21,  ∼ 700 °C :P121/n1, and ∼ 900 °C :Pmnb),因此,研究其不同结构的电化学性质对于进一步对其进行改性研究尤为重要。

 

Waldemar Hergetta等人[1]采用高压光学浮区法获得了高温相(Pmnb)Li2FeSiO4单晶,并研究了晶体生长工艺参数对杂相的影响,相关结果已发表在Journal of Crystal Growth。作者所采用的高压光学浮区炉为德国SciDre公司的HKZ高压光学浮区法单晶炉


温度梯度分布[1]

XRD图谱及晶体实物图片[1]


参考文献:

[1]. Waldemar Hergett, Christoph Neef, Hans-Peter Meyer, Rüdiger Klingeler, Challenges in the crystal growth of Li2FeSiO4, Journal of Crystal Growth, Volume 556, 2021, 125995,ISSN 0022-0248.



■  CoGeO3 单晶生长和性能研究


参考文献:Single Crystal Growth and Physical Properties of Pyroxene CoGeO3 Crystals 2021, 11, 378.

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3. (2020)Synthesis of a New Ruthenate Ba26Ru12O57 Crystals 2020, 10(5), 355

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6. (2019)High pO2 Floating Zone Crystal Growth of the Perovskite Nickelate PrNiO3 Crystals 2019, 9(7), 324

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中国科学院物理研究所

中国科学院固体物理研究所

北京师范大学

中山大学

南昌大学

上海大学

北京大学

北京航空航天大学

......



单晶生长利器:高质量单晶生长设备介绍



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