Multi-GHz 'Smart' Burst-mode ultrafast-laser processing of microfluidic structures, biological/medical materials and difficult industrial materials
Multi-GHz 'Smart' Burst-mode ultrafast-laser processing of microfluidic structures, biological/medical materials and difficult industrial materials
批准号:
494025-2016
负责人:
Marjoribanks, Robin
金额:
$16.38万
依托单位:
依托单位国家:
加拿大
项目类别:
Strategic Projects - Group
财政年份:
2017
资助国家:
加拿大
项目状态:
已结题
起止时间:
2017-01-01 至 2018-12-31
中文摘要
物理学、工程学和医学生物物理学的四名教员,连同他们的学生和博士后,两家加拿大公司和一名欧洲合作者,申请资助,以推进新一代用于制造和高附加值材料处理的强超短脉冲光纤激光器,围绕两个新范例:(1)根据应用,使用“可编程硅”代替定制设计的离散电子器件,用于快速(2 GHz)激光脉冲串的成形、控制和稳定;(2)超高重复频率(2ghz以上)的“突发模式”激光处理。超快脉冲激光器,作为一个类别,现在以非常低的附带影响做出卓越的切割而闻名。最近,爆发模式激光器以非常快速的连续(1-100 MHz)传递这种脉冲,已被证明是一种新的传递模式,它可以非常精确地控制有意的热量积累,材料升华,等离子体介导的烧蚀和材料改性。去年,人们发现bbb2ghz甚至比100mhz更好。我们的系统将在不需要多千瓦平均功率的情况下提供高峰值功率,“可编程硅”将使其成为一种自我监测、自我调节的激光器,将其最后输出脉冲与模板模式进行比较,然后在~30ns的实时时间内纠正操作。我们将忽略精确预测~20,000倍放大器的非线性增益动态的需要。为此,该系统更加稳定和精确,并为不同的交付模式提供了巨大而灵活的选择范围:从超温和的升华加工到非常具体的热控制,用于直接写入内部波导结构,从将玻璃切割成碎片到焊接在一起,然后更改为写入内部诊断光波导-所有这些都无需任何重新加工。基础研究是该项目的一部分,旨在为加工玻璃、晶体、多晶陶瓷、生物医学植入材料、金属和其他材料的不同需求建立最佳模式或“脉冲计划”。
英文摘要
Four faculty members in Physics, Engineering and Medical Biophysics, together with their students and postdocs, two Canadian companies and a European collaborator, request funding to advance a new generation of intense ultrashort-pulse fibre-laser for manufacturing and high value-added materials treatment, built around two new paradigms: (1) the use of "programmable silicon" instead of custom-designed discrete electronics for shaping, control and stabilization of very fast (2 GHz) laser pulsetrains, according to the application; and (2) 'burst-mode' laser processing at ultra-high repetition rates, above 2 GHz.Ultrafast-pulse lasers, as a class, are now well-known to make remarkable cuts with very low collateral impact. More recently, burst-mode lasers, delivering such pulses in very rapid succession (1-100 MHz) have been shown as a new mode of delivery -- one which gives very precise control of intentional heat accumulation, material sublimation, plasma-mediated ablation, and material modification. In the last year has come the discovery that >2 GHz is even better still than 100 MHz.Our system will deliver trains of high peak power without requiring multi-kilowatt average power, and "programmable silicon" will make it a self-monitoring, self-regulating laser which compares its last output pulse to a template pattern, then corrects operations in ~30ns real time. We'll bypass the need to precisely predict the nonlinear gain dynamics of the ~20,000x amplifier. For this, this system is far more stable and precise, and offers a huge and flexible range of options for different modes of delivery: from ultra-gentle sublimation machining to very specific control of heat for direct-writing internal waveguide structures, from dicing glass in pieces to welding it together, and then changing to writing internal diagnostic optical waveguides -- all without any retooling. Foundational research is one part of the project, to establish optimal patterns, or 'pulse plans', for different needs of processing glasses, crystals, polycrystalline ceramics, biomedical implant materials, metals and others.
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Ultra-intense and ultra-fast laser-matter interaction: foundations and applications
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项目类别:Discovery Grants Program - Individual
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