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Logical regulation of the enzyme-like activity of gold nanoparticles by using heavy metal ions

机译:逻辑enzyme-like活动的监管金纳米粒子通过使用重金属离子

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In this study we employed self-deposition and competitive or synergistic interactions between metal ions and gold nanoparticles (Au NPs) to develop OR, AND, INHIBIT, and XOR logic gates through regulation of the enzyme-like activity of Au NPs. in the presence of various metal ions (Ag~+, Bi~(3+), Pb~(2+), Pt4*, and Hg~(2+)), we found that Au NPs (13 nm) exhibited peroxidase-, oxidase-, or catalase-like activity. After Ag~+, Bi~(3+), or Pb~(2+) ions had been deposited on the Au NPs, the particles displayed strong peroxidase-like activity; on the other hand, they exhibited strong oxidase- and catalase-like activities after reactions with Ag~+/Hg~(2+) and Hg~(2+)/ Bi~(3+) ions, respectively. The catalytic activities of these Au NPs arose mainly from the various oxidation states of the surface metal atoms/ions. Taking advantage of this behavior, we constructed multiplex logic operations—OR, AND, INHIBIT, and XOR logic gates—through regulation of the enzyme-like activity after the introduction of metal ions into the Au NP solution. When we deposited Hg~(2+) and/or Bi~(3+) ions onto the Au NPs, the catalase-like activities of the Au NPs were strongly enhanced (>100-fold). Therefore, we could construct an OR logic gate by using Hg~(2+)/Bi~(3+) as inputs and the catalase-like activity of the Au NPs as the output. Likewise, we constructed an AND logic gate by using Pt~(4+) and Hg~(2+) as inputs and the oxidase-like activity of the Au NPs as the output; the co-deposition of Pt and Hg atoms/ions on the Au NPs was responsible for this oxidase-like activity. Competition between Pb~(2+) and Hg~(2+) ions for the Au NPs allowed us to develop an INHIBIT logic gate—using Pb~(2+) and Hg~(2+) as inputs and the peroxidase-like activity of the Au NPs as the output. Finally, regulation of the peroxidase-like activity of the Au NPs through the two inputs Ag~+ and Bi~(3+) enabled us to construct an XQR logic gate.
机译:在本研究中我们使用self-deposition和竞争或协同之间的相互作用金属离子和金纳米粒子(Au NPs)开发或,抑制和XOR逻辑门通过enzyme-like活动的监管非盟NPs。发现非盟NPs(13海里)展出过氧化物酶,氧化酶或catalase-like活动。Bi ~(3 +)、Pb ~(2 +)离子沉积在非盟NPs粒子显示强劲peroxidase-like活动;表现出强烈的氧化酶,catalase-like活动后的反应与Ag) ~ + / Hg ~(2 +)和Hg ~ (2 +) / Bi ~(3 +)离子,分别。催化这些非盟NPs出现主要活动从各个表面的氧化态金属原子/离子。行为,我们构造的多路复用逻辑操作或,抑制和XOR逻辑闸门enzyme-like的监管活动后,金属离子的引入在非盟NP方案。Hg ~(2 +)和/或Bi ~(3 +)离子到非盟NPs盟NPs catalase-like活动大力加强(> 100倍)。可以构造一个逻辑门用吗Hg ~ (2 +) / Bi ~(3 +)作为输入和catalase-like非盟NPs作为输出的活动。我们构造了一个逻辑门通过使用Pt ~ (4 +)和Hg ~(2 +)作为输入和oxidase-like非盟NPs作为输出的活动;Pt和汞原子/离子共沉积在非盟这个oxidase-like NPs负责活动。离子的非盟NPs允许我们开发一个抑制逻辑gate-using Pb ~(2 +)和Hg ~ (2 +)输入和非盟的peroxidase-like活动NPs作为输出。非盟NPs peroxidase-like活动这两个输入Ag) ~ +和Bi ~(3 +)使我们构造一个XQR逻辑门。

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