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Sources and Impact of Media Thermal Fluctuations in Heat-Assisted Magnetic Recording

机译:热辅助磁记录中介质热波动的来源和影响

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摘要

Optical and thermal modeling is used to understand and quantify the contribution of different sources of temperature fluctuations in heat-assisted magnetic recording. The dominant sources of temperature fluctuations are spatial variations of the absorption in the recording layer and spatial variations of the underlayer effective thermal boundary resistance. They result in an increased transition jitter that is proportional to the amplitude of the source variations. Besides, the transition jitter amplitude strongly depends on the length scale of the source fluctuations: fluctuations with smaller periods lead to reduced jitter as a result of in-plane heat spreading within the medium layers. Temperature fluctuations are also proportional to the input laser power or to the average temperature gradient. Consequently, transition jitter arising from temperature fluctuations does not change with improved temperature gradients, in contrast to jitter resulting from Curie temperature distributions. Interface roughness is also investigated as it is a practical source of both optical absorption fluctuations and thermal property fluctuations. It is found to lead to sizeable jitter, whose amplitude is proportional to the roughness amplitude and reduces at small roughness wavelengths.
机译:光学模型和热模型用于了解和量化热辅助磁记录中不同温度波动源的影响。温度波动的主要来源是记录层中吸收的空间变化和底层有效热边界电阻的空间变化。它们导致与源变化幅度成正比的跃迁抖动增加。此外,过渡抖动幅度在很大程度上取决于源波动的长度尺度:较小周期的波动会导致抖动减少,这是由于介质层内的平面内热扩散所致。温度波动也与输入激光功率或平均温度梯度成正比。因此,与由居里温度分布引起的抖动相反,由温度波动引起的跃迁抖动不会随温度梯度的提高而改变。还研究了界面粗糙度,因为它是光学吸收波动和热性质波动的实际来源。发现会导致较大的抖动,该抖动的幅度与粗糙度幅度成比例,并且在较小的粗糙度波长下会减小。

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