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首页> 外文期刊>Journal of Micromechanics and Microengineering >Microfabrication of toroidal inductors integrated with nanolaminated ferromagnetic metallic cores
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Microfabrication of toroidal inductors integrated with nanolaminated ferromagnetic metallic cores

机译:集成纳米叠层铁磁金属芯的环形电感器的微细加工

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摘要

We report microfabricated toroidal inductors with nanolaminated ferromagnetic metallic cores for chip-scale, high-power switching converters. The fabrication process of the toroidal inductor is based on individual manufacturing of partial windings (i.e. bottom and vertical conductors) and nanolaminated magnetic core, and integrating them by means of a drop-in approach. The nanolaminated ferromagnetic metallic cores presented in this paper consist of many multilayers of electrodeposited CoNiFe films, each layer with sub-micron thickness, with a total core thickness exceeding tens of microns. The beneficial magnetic properties (i.e. high saturation flux density and low coercivity) of CoNiFe alloys are well suited for chip-scale inductors as they achieve both large energy storage capacity as well as minimized volumetric core losses at high operating frequencies due to their nanolaminated structure. A drop-in integration approach, introduced to combine the microfabricated toroidal inductor windings with the magnetic cores, allows ease of integration. An advantage of this hybrid approach over monolithic fabrication in this application is the potential use of a wide variety of core materials, both microfabricated and bulk-fabricated, and which may or may not ultimately be CMOS-compatible. Exploiting this drop-in approach, 30-turn- and 50-turn-toroidal inductors integrated with nanolaminated CoNiFe cores, having 10 mm outer diameter and 1 mm thickness, have been successfully developed. Both types of inductors exhibit inductances higher than 1 μH at frequencies up to tens of MHz, showing ten times the inductance of an air core device with the same nominal geometry. The peak quality factor of the 30-turn-toroidal inductor reaches 18 at 1 MHz.
机译:我们报告了用于芯片级高功率开关转换器的带有纳米叠层铁磁金属芯的超微型环形电感器。环形电感器的制造过程基于部分绕组(即底部和垂直导体)和纳米叠层磁芯的单独制造,并通过嵌入式方法将它们集成在一起。本文介绍的纳米叠层铁磁金属芯由许多多层电沉积CoNiFe薄膜组成,每一层的亚微米厚度都超过了几十微米。 CoNiFe合金的有益磁性能(即高饱和磁通密度和低矫顽力)非常适合芯片级电感器,因为它们具有纳米层状结构,因此在高工作频率下既实现了大的能量存储能力,又使体积铁芯损耗最小化。引入的嵌入式集成方法可以将微型环形电感器绕组与磁芯结合在一起,从而使集成变得容易。在此应用中,这种混合方法相对于单片制造的一个优势是可以潜在地使用微制造和批量制造的各种芯材,这些芯材最终可能兼容或可能不兼容CMOS。利用这种插入式方法,已成功开发出与纳米层压CoNiFe磁芯集成的30匝和50匝环形电感器,其外径为10毫米,厚度为1毫米。两种类型的电感器在高达数十MHz的频率下均表现出高于1μH的电感,这是具有相同标称几何形状的空心器件的电感的十倍。 30匝环形电感器的峰值品质因数在1 MHz时达到18。

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