CSIRO-QUT Joint Sustainable Materials and Devices Laboratory, PO Box 218, Lindfield, NSW 2070, Australia.
School of Physics and Electronic Information, Institute of Optoelectronic Materials and Technology, Gannan Normal University, Ganzhou, 341000, China.
Sci Rep. 2017 Jul 17;7(1):5601. doi: 10.1038/s41598-017-04963-4.
Cold atmospheric plasma has recently emerged as a simple, low-cost and efficient physical method for inducing significant biological responses in seeds and plants without the use of traditional, potentially environmentally-hazardous chemicals, fungicides or hormones. While the beneficial effects of plasma treatment on seed germination, disease resistance and agricultural output have been reported, the mechanisms that underpin the observed biological responses are yet to be fully described. This study employs Fourier Transform Infrared (FTIR) spectroscopy and emission spectroscopy to capture chemical interactions between plasmas and seed surfaces with the aim to provide a more comprehensive account of plasma-seed interactions. FTIR spectroscopy of the seed surface confirms plasma-induced chemical etching of the surface. The etching facilitates permeation of water into the seed, which is confirmed by water uptake measurements. FTIR of exhaust and emission spectra of discharges show oxygen-containing species known for their ability to stimulate biochemical processes and deactivate pathogenic microorganisms. In addition, water gas, CO, CO and molecules containing -C(CH)- moieties observed in FTIR spectra of the exhaust gas during plasma treatment may be partly responsible for the plasma chemical etching of seed surface through oxidizing the organic components of the seed coat.
冷等离体子体最近作为一种简单、低成本且高效的物理方法而出现,可在不使用传统的、潜在对环境有害的化学物质、杀菌剂或激素的情况下,诱导种子和植物产生显著的生物反应。虽然已经报道了等离子体处理对种子发芽、抗病性和农业产量的有益影响,但支持观察到的生物反应的机制尚未得到充分描述。本研究采用傅里叶变换红外(FTIR)光谱和发射光谱技术,捕捉等离子体与种子表面之间的化学相互作用,旨在更全面地描述等离子体-种子相互作用。种子表面的 FTIR 光谱证实了等离子体诱导的表面化学蚀刻。这种蚀刻促进了水进入种子,这一点通过水吸收测量得到了证实。排放物的发射光谱和发射光谱的 FTIR 显示了含氧物种,这些物种因其刺激生化过程和使致病微生物失活的能力而闻名。此外,在等离子体处理过程中废气的 FTIR 光谱中观察到的水煤气、CO、CO 和含有-C(CH)- 部分的分子,可能通过氧化种皮的有机成分,部分负责种子表面的等离子体化学蚀刻。