Abadía Nicolás, Bello Frank, Zhong Chuan, Flanigan Patrick, McCloskey David M, Wolf Christopher, Krichevsky Alexander, Wolf Daniel, Zong Fenghua, Samani Alireza, Plant David V, Donegan John F
Opt Express. 2018 Jan 22;26(2):1752-1765. doi: 10.1364/OE.26.001752.
We investigate a tapered, hybrid plasmonic waveguide which has previously been proposed as an optically efficient near-field transducer (NFT), or component thereof, in several devices which aim to exploit nanofocused light. We numerically analyze how light is transported through the waveguide and ultimately focused via effective-mode coupling and taper optimization. Crucial dimensional parameters in this optimization process are identified that are not only necessary to achieve maximum optical throughput, but also optimum thermal performance with specific application towards heat-assisted magnetic recording (HAMR). It is shown that existing devices constructed on similar waveguides may benefit from a heat spreader to avoid deformation of the plasmonic element which we achieve with no cost to the optical efficiency. For HAMR, our design is able to surpass many industry requirements in regard to both optical and thermal efficiency using pertinent figure of merits like 8.5% optical efficiency.
我们研究了一种锥形混合等离子体波导,该波导此前已被提议作为一种光学高效的近场换能器(NFT)或其组件,用于几种旨在利用纳米聚焦光的器件中。我们通过数值分析了光如何通过波导传输,并最终通过有效模式耦合和锥度优化实现聚焦。确定了该优化过程中的关键尺寸参数,这些参数不仅是实现最大光通量所必需的,而且对于热辅助磁记录(HAMR)的特定应用而言,也是实现最佳热性能所必需的。结果表明,基于类似波导构建的现有器件可能受益于热扩散器,以避免等离子体元件变形,而我们在不损失光学效率的情况下实现了这一点。对于HAMR,我们的设计能够使用诸如8.5%光学效率等相关品质因数,在光学和热效率方面超越许多行业要求。