欢迎访问沈阳真空杂志社 Email Alert    RSS服务

真空 ›› 2026, Vol. 63 ›› Issue (5): 42-47.doi: 10.13385/j.cnki.vacuum.2026.05.06

• 真空获得与设备 • 上一篇    下一篇

半导体领域中干式螺杆真空泵发展现状*

高宝华1, 袁博2, 李庆飞1, 彭亮1, 赵冠华1, 顾隆杰2, 杜广煜2   

  1. 1.上海斯可络压缩机有限公司,上海 201504;
    2.东北大学机械工程与自动化学院,辽宁 沈阳 110819
  • 收稿日期:2025-12-25 出版日期:2026-09-25 发布日期:2026-09-28
  • 通讯作者: 高宝华,工程师。
  • 作者简介:高宝华(1973-),男,江苏姜堰,工程师,本科。
  • 基金资助:
    *金山区企业产学研科技成果转化项目(2024-CXY-02)

Development Status of Dry Screw Vacuum Pumps in the Semiconductor Field

GAO Baohua1, YUAN Bo2, LI Qingfei1, PENG Liang1, ZHAO Guanhua1, GU Longjie2, DU Guangyu2   

  1. 1. Shanghai Screw Compressor Co., Ltd., Shanghai 201504, China;
    2. School of Mechanical Engineering and Automation, Northeastern University, Shenyang 110819, China
  • Received:2025-12-25 Online:2026-09-25 Published:2026-09-28

摘要: 干式螺杆真空泵作为一种先进的机械真空泵,凭借其抽速范围宽、无油污染、耐腐蚀及卓越的粉尘处理能力,已成为半导体领域真空获得系统的核心装备。本文系统阐述了干式螺杆真空泵在物理气相沉积、化学气相沉积、刻蚀及硅片制造等半导体领域关键工艺中的应用现状,分析了其在处理强腐蚀性气体、粉尘时的技术适应性。对比剖析了多级罗茨泵、干式爪式泵、干式涡旋泵在半导体工艺应用中的结构缺陷与技术局限。此外,本文结合当前市场格局,分析了国内企业在打破海外垄断、推动国产化替代进程中取得的突破与面临的挑战,展望了面向先进制程的智能化、高洁净度及多学科交叉融合的发展趋势。

关键词: 半导体领域, 干式螺杆真空泵, 真空镀膜, 国产化替代

Abstract: As an advanced mechanical vacuum pump, the dry screw vacuum pump has become core equipment in the vacuum acquisition system in the semiconductor field, owing to its wide pumping speed range, oil-free pollution, corrosion resistance, and excellent dust handling capability. This article systematically expounds the application status of dry screw vacuum pumps in key semiconductor processes, such as physical vapor deposition, chemical vapor deposition, etching, and silicon wafer manufacturing, while analyzing their technical adaptability in handling highly corrosive gases and dust. Through comparative analysis, it identifies structural defects and technical limitations of multi-stage roots pumps, dry claw pumps, and dry scroll pumps in semiconductor process applications. Furthermore, based on the current market landscape, this article analyzes the breakthroughs and challenges faced by domestic enterprises in breaking overseas monopolies and promoting domestic substitution. It also looks forward to the development trend of intelligence, high cleanliness, and multidisciplinary integration for advanced manufacturing processes.

Key words: semiconductor field, dry screw vacuum pump, vacuum coating, localization substitution

中图分类号:  TB752

[1] 周均铭. 中国分子束外延技术发展历程[J].物理,2021,50(12):843-848.
[2] 陈科球,杜相,林东旭,等.钙钛矿薄膜的气相法制备及光伏应用的研究进展[J].人工晶体学报,2018,47(9):1823-1838.
[3] 张丕显,张以忱,战春鸣,等.干式真空泵在半导体及新能源领域的应用及发展趋势[J].真空,2024,61(3):1-8.
[4] 杨乃恒. 干式真空泵的原理、特征及其应用[J].真空,2000,(3):1-9.
[5] 姜燮昌. 干式螺杆真空泵的结构、性能与应用[J].真空,2018,55(4):6-12.
[6] 徐飞. 双螺杆真空泵结构设计及分析[D].安徽:合肥工业大学,2015.
[7] Tengler A.The benefits of oil-free vacuum pumps in industrial processes[J].World Pumps, 2005(460):18,20-21.
[8] Hou Ruijie, Xing Lifan, Wang Jun, et al.A coupled thermal-fluid-structure model and performance analysis of twin-screw vacuum pumps under high vacuum conditions[J]. Applied Thermal Engineering, 2026, 289(3): 129978.
[9] 赵凡,张世伟,韩进,等.螺杆真空泵技术领域的专利分析[J].真空,2016,53(1):26-31.
[10] 吴俊,吴杰,干蜀毅,等.干式螺杆真空泵的理论研究进展[J].真空,2024,61(5):36-45.
[11] Zhu Hao, Zhang Wenqi, Zhao Kangcheng, et al.Recent advances in precision deposition techniques on semiconductor surfaces: Mechanisms,methods,andapplications[J]. Materials Today Communications, 2025, 48:113495.
[12] 刘坤, 巴德纯, 杨乃恒, 等. 高真空直排大气干泵的最新进展[J]. 真空科学与技术学报, 2008, 28(1): 21-25.
[13] Mattox D M.Handbook of Physical Vapor Deposition (PVD) Processing[M]. 2nd ed. Oxford: William Andrew, 2010.
[14] Reinke M, Kuzminykh Y, Eltes F, et al.Low Temperature Epitaxial Barium Titanate Thin Film Growth in High Vacuum CVD[J]. Advanced Materials Interfaces, 2017,4(18):1700116.
[15] Li Jie, Zhou Xiaoying, Zhang Jinbing, et al.Removal of hydrogen impurities from granular polysilicon via microwave heating for Czochralski monocrystalline silicon[J]. Solar Energy Materials and Solar Cells, 2025, 282: 113414.
[16] 施政. 直拉单晶炉真空系统和充气系统的改进[J].真空,2005,(2):20-22.
[17] Qiu Shi, Ren Shiqiang, Huang Liuqing, et al.Influence of different vacuum conditions on the distribution of insoluble inclusions in a multi-crystalline silicon ingot[J]. Vacuum, 2016, 128: 66-72.
[18] Liu Anhan, Hou Zhan, Wu Fan, et al.Evaluation of etching performance of single etching gases for high-κ films[J]. Microelectronic Engineering, 2023, 282:112087.
[19] Li Dantong, He Zhilong, Wang Chuang, et al.Design methodology and performance analysis of conical rotors for dry screw vacuum pumps[J]. Vacuum, 2021, 185:110025.
[20] Wang Jun, Zhao Lizhuang, Zhao Xihao, et al.Optimal design and development of two-segment variable-pitch screw rotors for twin-screw vacuum pumps[J]. Vacuum, 2022, 203: 111254.
[21] 张欣. 博亚精密机械:国产干式真空泵的突围之路[J].现代制造,2025,(11):18-19.
[22] 陈翔,聂忆华,鲍俊霖,等.废旧电池回收技术及其对环境与资源可持续发展的影响[J].环境保护前沿, 2025, 15(4):465-476.
[23] 叶俊文,黎子辉,高峰,等.基于可视化的真空镀膜装备专利竞争技术分析[J].真空科学与技术学报, 2022, 42(6):442-429.
[24] 刘佳,赵蕾霞,钟永恒,等.基于标准分析的全球真空泵产业布局及发展进程研究[J].真空科学与技术学报,2016,36(2):244-250.
[25] Li Danbong, Ma Kai, Chen Xiaoqian, et al.Simulation of the multiple-stage Roots dry vacuum pump[J]. Vacuum, 2026, 244:114846.
[26] 于威达. 多级罗茨干式真空泵相邻级间流动区域多相流研究[D].东北大学,2014.
[27] Xin Yuanjie, Pan Shiyang, Wang Jun, et al.Innovative claw rotor design for claw vacuum pump and its power consumption analysis[J]. Vacuum, 2024, 226(69): 113322.
[28] Zhang Yingli, Yue Xiangji, Ding Jianan, et al.Study the Effect of Operating Temperature on Performance in Dry Scroll Vacuum Pump[J]. Applied Sciences, 2023, 13(16): 9378.
[1] 姜亚南, 熊涛, 贺岩斌, 李民久, 李运坡, 魏于苹, 钟利, 刘旋. 真空镀膜电源控制系统中单双纤收发器性能对比*[J]. 真空, 2026, 63(2): 97-103.
[2] 倪俊, 郭腾, 李灿伦, 侯凯霖, 李荣义. 基于深度学习的真空镀膜生产缺陷检测方法研究[J]. 真空, 2025, 62(4): 69-74.
[3] 唐政. 阵列蒸发源对平移基板成膜均匀性的研究*[J]. 真空, 2024, 61(6): 21-25.
[4] 李翔, 姜小蛟, 战春鸣, 刘昂, 孙宁, 李加平. 基于系统回归模型的真空镀膜设备液冷加热盘设计方法研究*[J]. 真空, 2024, 61(4): 6-11.
[5] 孙彬, 刘兴龙, 徐乘远, 王庆, 蔺增. 真空镀膜助力低碳制造与可持续发展*[J]. 真空, 2023, 60(3): 12-17.
[6] 邓文宇, 王朋阳, 齐丽君, 段永利, 孙宝玉, 万亿, 张昕洁, 谢元华,杜广煜,刘坤. 钕铁硼永磁材料腐蚀机理及防护研究进展*[J]. 真空, 2020, 57(5): 45-51.
[7] 王福贞. “热处理技术”和 “真空镀膜技术”在走向融合[J]. 真空, 2020, 57(5): 1-6.
[8] 张粉利, 邓敬莲, 王杰峰, 孟庆远. 钢管镀膜前处理清洗工艺的研究[J]. 真空, 2018, 55(6): 60-63.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
[1] 李得天, 成永军, 张虎忠, 孙雯君, 王永军, 孙 健, 李 刚, 裴晓强. 碳纳米管场发射阴极制备及其应用研究[J]. 真空, 2018, 55(5): 1 -9 .
[2] 宋青竹, 张哲魁, 孙足来, 鄂东梅. 大型钛合金熔铸技术——真空电弧凝壳精铸设备进展[J]. 真空, 2018, 55(5): 58 -61 .
[3] 郑 列, 李 宏. 200kV/2mA 连续可调直流高压发生器的设计[J]. 真空, 2018, 55(6): 10 -13 .
[4] 阮庆东, 蒲世豪, 陈 常, 魏于苹. 一种新型高能离子注入系统的加速电源研制[J]. 真空, 2018, 55(6): 14 -18 .
[5] 纪 明, 孙 亮, 杨敏勃. 一种用于对月球样品自动密封锁紧的设计[J]. 真空, 2018, 55(6): 24 -27 .
[6] 王晓冬, 吴虹阅, 张光利, 李 赫, 孙 浩, 董敬亮, TU Jiyuan. 计算流体力学在真空技术中的应用[J]. 真空, 2018, 55(6): 45 -48 .
[7] 李忠仁, 明 悦, 朱一鸣. 电阻加热真空高温石墨化炉的功率计算[J]. 真空, 2018, 55(6): 73 -75 .
[8] 尹沙沙, 彭润玲, 韦 妍, 曹 蔚, 王 宁. 真空冷冻干燥法制备纳米二硫化钼的实验研究[J]. 真空, 2018, 55(6): 80 -83 .
[9] 陈 博, 杨 飞, 李建昌. 柔性薄膜材料疲劳失效研究[J]. 真空, 2019, 56(1): 20 -26 .
[10] 田海, 杨生胜, 把得东. 长期紫外辐射下星用功能材料性能退化预示方法研究[J]. 真空, 2019, 56(2): 19 -21 .