Chiral Molecular Carbon Nanostructures

被引:136
作者
Fernandez-Garcia, Jesus M. [1 ]
Evans, Paul J. [1 ]
Filippone, Salvatore [1 ]
Angeles Herranz, Maria [1 ]
Martin, Nazario [1 ,2 ]
机构
[1] Univ Complutense Madrid, Fac Quim, Dept Quim Organ, Avda Complutense S-N, E-28040 Madrid, Spain
[2] IMDEA Nanosci, C Faraday 9,Campus Cantoblanco, E-28049 Madrid, Spain
基金
欧洲研究理事会;
关键词
FULLERENES; HYDROGEN; METAL; C-60; FUNCTIONALIZATION; CYCLOADDITION; NANOGRAPHENE;
D O I
10.1021/acs.accounts.9b00144
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Chirality is a fascinating property present in naturally occurring and artificial molecules and materials, observable as chiroptical behavior. The emerging area of carbon nanostructures has undergone tremendous development, with a wide variety of carbon nanoforms reported over the last two decades. However, despite interest in merging chirality and nanocarbons, this has been successfully achieved only in empty fullerenes, whereas in other kinds of fullerenes or carbon nanostructures such as carbon nanotubes, graphene, and graphene quantum dots (GQDs), to name the most popular systems, it is almost unknown. Therefore, controlling chirality in carbon nanostructures currently represents a major challenge for the chemical community. In this Account, we show our progress in the synthesis of chiral molecular carbon nanostructures, namely, metallofullerenes, endohedral fullerenes, GQDs, and curved molecular nanographenes, by using asymmetric catalysis and both top down and bottom-up chemical approaches. Furthermore, we bring in a new family of lesser-known molecular chiral bilayer nanographenes, where chirality is introduced from the starting helicene moiety and a single enantiomer of the nanographene is synthesized. Some important landmarks in the development of chiral molecular carbon nanostructures shown in this Account are the application of synthesis-tailored, enantiomerically pure metallofullerenes as catalysts for hydrogen transfer reactions and the use of endohedral fullerenes to determine the effect of the incarcerated molecule in the carbon cage on the cis trans stereoisomerization of optically active pendent moieties. Furthermore, the first top-down synthesis of chiral GQDs by functionalization with chiral alcohols is also presented. An emerging alternative to GQDs, when the desire for purity and atomistic control outweighs the cost of multistep synthesis, is the bottom-up approach, in which molecular nanographenes are formed in precise sizes and shapes and enantiomeric control is feasible. In this regard, a singular and amazing example is given by our synthesis of a single enantiomer of the first chiral bilayer nanographene, which formally represents a new family of molecular nanographenes with chirality controlled and maintained throughout their syntheses. The aforementioned synthetic chiral nanostructures represent groundbreaking nanocarbon systems where chirality is a further dimension of structural control, paving the way to a new scenario for carbon nanoforms in which chirality selection determines the properties of these novel carbon-based materials. Fine-tuning of such properties is envisioned to impact biomedical and materials science applications.
引用
收藏
页码:1565 / 1574
页数:10
相关论文
共 50 条
[1]   Chiral Nanographene Propeller Embedding Six Enantiomerically Stable [5]Helicene Units [J].
Berezhnaia, Veronika ;
Roy, Myriam ;
Vanthuyne, Nicolas ;
Villa, Marco ;
Naubron, Jean-Valere ;
Rodriguez, Jean ;
Coquerel, Yoann ;
Gingras, Marc .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2017, 139 (51) :18508-18511
[2]   Chemical functionalization and characterization of graphene-based materials [J].
Bottari, Giovanni ;
Angeles Herranz, Ma ;
Wibmer, Leonie ;
Volland, Michel ;
Rodriguez-Perez, Laura ;
Guldi, Dirk M. ;
Hirsch, Andreas ;
Martin, Nazario ;
D'Souza, Francis ;
Torres, Tomas .
CHEMICAL SOCIETY REVIEWS, 2017, 46 (15) :4464-4500
[3]   The added value of small-molecule chirality in technological applications [J].
Brandt, Jochen R. ;
Salerno, Francesco ;
Fuchter, Matthew J. .
NATURE REVIEWS CHEMISTRY, 2017, 1 (06)
[4]   Kilogram-Scale Production of Corannulene [J].
Butterfield, Anna M. ;
Gilomen, Bruno ;
Siegel, Jay S. .
ORGANIC PROCESS RESEARCH & DEVELOPMENT, 2012, 16 (04) :664-676
[5]   A Twisted Nanographene Consisting of 96 Carbon Atoms [J].
Cheung, Kwan Yin ;
Chan, Chi Kit ;
Liu, Zhifeng ;
Miao, Qian .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2017, 56 (31) :9003-9007
[6]   Chiral Recognition and Separation by Chirality-Enriched Metal-Organic Frameworks [J].
Das, Saikat ;
Xu, Shixian ;
Ben, Teng ;
Qiu, Shilun .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2018, 57 (28) :8629-8633
[7]   Buckyballs [J].
Delgado, Juan L. ;
Filippone, Salvatore ;
Giacalone, Francesco ;
Angeles Herranz, Ma ;
Illescas, Beatriz ;
Perez, Emilio M. ;
Martin, Nazario .
POLYARENES II, 2014, 350 :1-64
[8]   Synthesis of a Helical Bilayer Nanographene [J].
Evans, Paul J. ;
Ouyang, Jiangkun ;
Favereau, Ludovic ;
Crassous, Jeanne ;
Fernandez, Israel ;
Perles, Josefina ;
Martin, Nazario .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2018, 57 (23) :6774-6779
[9]   π-Extended Corannulene-Based Nanographenes: Selective Formation of Negative Curvature [J].
Fernandez-Garcia, Jesus M. ;
Evans, Paul J. ;
Rivero, Samara Medina ;
Fernandez, Israel ;
Garcia-Fresnadillo, David ;
Perles, Josefina ;
Casado, Juan ;
Martin, Nazario .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2018, 140 (49) :17188-17196
[10]   A Naphtho-Fused Double [7]Helicene from a Maleate-Bridged Chrysene Trimer [J].
Ferreira, Marli ;
Naulet, Guillaume ;
Gallardo, Hugo ;
Dechambenoit, Pierre ;
Bock, Harald ;
Durola, Fabien .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2017, 56 (12) :3379-3382