Journal of The Electrochemical Society · 2005 · 23 citations · 9 references
EngineeringGlow DischargeUltralow-k DielectricsVacuum DeviceFilm DensificationPlasma ProcessingChemical EngineeringCorrosionNonthermal PlasmaHydrogen-containing Plasma DischargesMaterials ScienceElectrical EngineeringSurface DensificationPlasma EtchingPhotoresist RemovalReductive Plasma DischargesSurface ScienceApplied PhysicsGas Discharge PlasmaPlasma ApplicationElectrical Insulation
Hydrogen-containing plasma discharges, used to remove photoresist in integrated circuit manufacturing, are compared for their damaging effect on porous ultralow- dielectrics. Such reductive ash processes studied are (A) a low- pressure chemistry, reactive ion etch (RIE)-type discharge; (B) a high-pressure chemistry, RIE-type discharge; and (C) a high-pressure remotely generated discharge. Two porous SiOCH dielectrics of differing porosity and values 2.5 and 2.2 are used in this comparative study. Diagnostic methods used for film analysis include Fourier transform infrared spectroscopy, thermal desorption spectroscopy, density, and -value measurements. Both RIE ash processes (A) and (B) were found to cause significant dielectric damage through film densification, loss, water gain, and dielectric constant increases. Film damage is noted to be more severe for the higher porosity film. In contrast, all measured parameters for both dielectric films showed low damage with use of the remotely generated discharge. Positronium annihilation lifetime spectroscopy is employed in this work to show pore collapse and surface densification with use of either RIE reductive ash.
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Effect of oxygen plasma exposure of porous spin-on-glass films
Eiichi Kondoh, Takanori Asano, Akira Nakashima et al. · Journal of Vacuum Science & Technology B Microelectronics and Nanometer Structures Processing Measurement and Phenomena · 2000 · 74 citations
Materials Science, Chemical Engineering, Plasma Exposure +13