Photonic Device Physics Laboratory, Institute of Physics and Applied Physics, Yonsei University, Seoul 120-749, South Korea.
Harvard Medical School, Boston, Massachusetts 02115, USA.
Sci Rep. 2017 Jan 27;7:41480. doi: 10.1038/srep41480.
A new extraordinary application of deoxyribonucleic acid (DNA) thin-solid-film was experimentally explored in the field of ultrafast nonlinear photonics. Optical transmission was investigated in both linear and nonlinear regimes for two types of DNA thin-solid-films made from DNA in aqueous solution and DNA-cetyltrimethylammonium chloride (CTMA) in an organic solvent. Z-scan measurements revealed a high third-order nonlinearity with n exceeding 10 at a wavelength of 1570 nm, for a nonlinarity about five orders of magnitude larger than that of silica. We also demonstrated ultrafast saturable absorption (SA) with a modulation depth of 0.43%. DNA thin solid films were successfully deposited on a side-polished optical fiber, providing an efficient evanescent wave interaction. We built an organic-inorganic hybrid all-fiber ring laser using DNA film as an ultrafast SA and using Erbium-doped fiber as an efficient optical gain medium. Stable transform-limited femtosecond soliton pulses were generated with full width half maxima of 417 fs for DNA and 323 fs for DNA-CTMA thin-solid-film SAs. The average output power was 4.20 mW for DNA and 5.46 mW for DNA-CTMA. Detailed conditions for DNA solid film preparation, dispersion control in the laser cavity and subsequent characteristics of soliton pulses are discussed, to confirm unique nonlinear optical applications of DNA thin-solid-film.
脱氧核糖核酸(DNA)薄膜的一种新的非凡应用在超快非线性光子学领域得到了实验探索。在水溶液中的 DNA 和有机溶液中的 DNA-十六烷基三甲基溴化铵(CTMA)制成的两种 DNA 薄膜的线性和非线性两种状态下研究了光传输。Z 扫描测量显示,在 1570nm 波长下,n 超过 10,三阶非线性系数 n 超过 10,非线性比二氧化硅大五个数量级。我们还证明了具有 0.43%调制深度的超快饱和吸收(SA)。成功地在侧面抛光光纤上沉积了 DNA 薄膜,提供了有效的倏逝波相互作用。我们使用 DNA 薄膜作为超快 SA,并使用掺铒光纤作为高效光增益介质,构建了有机-无机混合全光纤环形激光器。对于 DNA 和 DNA-CTMA 薄膜 SA,产生了稳定的限幅飞秒孤子脉冲,其全宽半最大值分别为 417fs 和 323fs。DNA 的平均输出功率为 4.20mW,DNA-CTMA 的平均输出功率为 5.46mW。讨论了 DNA 固体薄膜制备的详细条件、激光腔中的色散控制以及孤子脉冲的后续特性,以确认 DNA 薄膜的独特非线性光学应用。