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The Significance of Multivalent Bonding Motifs and Bond Order in DNA-Directed Nanoparticle Crystallization

机译:多价键基序和键序在DNA定向纳米粒子结晶中的意义

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摘要

Multivalent oligonucleotide-based bonding elements have been synthesized and studied for the assembly and crystallization of gold nanoparticles. Through the use of organic branching points, divalent and trivalent DNA linkers were readily incorporated into the oligonucleotide shells that define DNA-NPs and compared to monovalent systems. These multivalent bonding motifs enable the change of “bond strength” between particles and therefore modulate the effective “bond order.” In addition, the improved accessibility of strands between neighboring particles, either due to multivalency or modifications to increase strand flexibility, gives rise to superlattices with less strain in the crystallites compared to traditional designs. Furthermore, the increased availability and number of binding modes also provide a new variable that allows previously unobserved crystal structures to be synthesized, as evidenced by the formation of a thorium phosphide superlattice.
机译:已经合成并研究了基于多价寡核苷酸的键合元素,用于金纳米颗粒的组装和结晶。通过使用有机分支点,二价和三价DNA接头可轻松整合到定义DNA-NP的寡核苷酸壳中,并与单价系统进行比较。这些多价键基序可以改变粒子之间的“键强度”,从而调节有效的“键序”。另外,与传统设计相比,由于多价或通过修饰以增加股线的柔韧性,相邻粒子之间的股线的可及性得到了改善,从而产生了微晶应变较小的超晶格。此外,增加的可用性和结合模式的数量还提供了一个新变量,可以合成以前未观察到的晶体结构,这由磷化super超晶格的形成证明。

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