Controlling Reactivity and Selectivity in the Nondirected C–H Activation of Arenes with PalladiumClick to copy article linkArticle link copied!
- Simon KaltenbergerSimon KaltenbergerOtto Diels-Institut für Organische Chemie, Christian-Albrechts-Universität zu Kiel, Otto-Hahn-Platz 4, 24118 Kiel, GermanyMore by Simon Kaltenberger
- Manuel van Gemmeren*Manuel van Gemmeren*Email: [email protected]Otto Diels-Institut für Organische Chemie, Christian-Albrechts-Universität zu Kiel, Otto-Hahn-Platz 4, 24118 Kiel, GermanyMore by Manuel van Gemmeren
Abstract

Conspectus
Aromatic structures are widespread motifs throughout organic chemistry, and C–H activation has been recognized as a major tool for enabling their sustainable and efficient functionalization. Through C–H activation, arenes can be modified without the need for prefunctionalization, leading to inherent atom- and step-economic advantages over traditional methods. However, for the development of synthetically useful methods, several hurdles have to be overcome. The strength of C–H bonds necessitates the development of sufficiently reactive catalysts, while the presence of multiple C–H bonds within a substrate poses challenges in terms of site-selectivity. Traditionally these challenges have been addressed by substrate control. By attaching different directing groups (DGs), the reactivity of the respective arene was significantly enhanced and the DG guided the metal in close proximity to specific C–H bonds, resulting in high site-selectivity. However, the introduction and removal of the DG add additional steps to the synthetic sequence, and the scope of the reaction is limited to a specific substrate class. The development of complementary nondirected methods that can be applied to a broad range of arenes without the necessity to carry a specific functional group that coordinates to Pd (referred to as simple arenes) is therefore highly desirable. However, the intrinsically lower reactivity of such substrates and the absence of a selectivity-determining DG pose significant challenges that can be solved only by the development of highly efficient catalysts. Consequently, the field of nondirected C–H activation, especially with respect to Pd-catalyzed methods, remained comparatively underdeveloped when we initiated our research program in 2017. At that time, state-of-the-art methods required the arene to be used in large excess, precluding its use in late-stage functionalization. Since organopalladium species are among the most versatile synthetic intermediates, we realized that developing a system, which can effectively and selectively activate C–H bonds in simple arenes with the arene as the limiting reagent, would be a powerful tool in synthetic organic chemistry. This account summarizes our groups’ research toward the development and application of catalytic systems offering this desired reactivity and focuses explicitly on Pd-catalyzed nondirected C–H functionalization reactions of arenes, where the arene is employed as a limiting reagent. After an introduction that summarizes the state of Pd-catalyzed C–H activation of arenes before 2017 and the associated challenges, experimental and mechanistic details about the development of the first arene-limited, nondirected C–H functionalization of simple arenes with palladium will be discussed. This reactivity was enabled by the identification and combination of two complementary ligands, an N-heterocycle and an amino acid-derived ligand. Afterward we will discuss the expansion of this dual-ligand approach to further arene-limited transformations. Finally, we describe two methodologies that originated from the observations we made during our studies, namely, the late-stage deuteration of simple arenes and a highly selective olefination method that uses noncovalent interactions to induce meta selectivity.
Cited By
Smart citations by scite.ai include citation statements extracted from the full text of the citing article. The number of the statements may be higher than the number of citations provided by ACS Publications if one paper cites another multiple times or lower if scite has not yet processed some of the citing articles.
This article is cited by 26 publications.
- Chunchen Yuan, Wenlong Zhang. Palladium-Catalyzed ortho C–H Allylation of Tertiary Anilines. Organic Letters 2025, 27
(15)
, 3877-3882. https://doi.org/10.1021/acs.orglett.5c00584
- Sobi Asako, Laurean Ilies. Spirobipyridine Ligands as a Unique Platform for Substrate Recognition and Reaction Control through Noncovalent Interactions. ACS Catalysis 2025, 15
(8)
, 6372-6379. https://doi.org/10.1021/acscatal.5c00101
- Yubing Liu, Xun Zhang, Jie Li, Xinyu Pei, Siping Pang, Chunlin He. Construction of Bis-Heterocyclic Energetic Compounds via C–N Coupling Reactions. JACS Au 2025, 5
(2)
, 990-997. https://doi.org/10.1021/jacsau.4c01239
- Yogesh Bairagi, Sandip Porey, Sai V. C. Vummaleti, Xinglong Zhang, Goutam Kumar Lahiri, Debabrata Maiti. Synthesis of β-(Hetero)aryl Ketones via Ligand-Enabled Nondirected C–H Alkylation. ACS Catalysis 2024, 14
(20)
, 15654-15664. https://doi.org/10.1021/acscatal.4c04319
- Kaibo Feng, Elaine Reichert Raguram, James R. Howard, Ellyn Peters, Cecilia Liu, Matthew S. Sigman, Stephen L. Buchwald. Development of a Deactivation-Resistant Dialkylbiarylphosphine Ligand for Pd-Catalyzed Arylation of Secondary Amines. Journal of the American Chemical Society 2024, 146
(39)
, 26609-26615. https://doi.org/10.1021/jacs.4c09667
- Fritz Deufel, Manuel van Gemmeren. Deuteration of Arenes via Pd-Catalyzed C–H Activation: A Lesson in Nondirected C–H Activation, Isotopic Labeling, and NMR Characterization. Journal of Chemical Education 2024, 101
(8)
, 3410-3417. https://doi.org/10.1021/acs.jchemed.4c00270
- Chunchen Yuan, Changbo Jia, Xinyu Zhang, Wenlong Zhang, Yang’en You, Xiaolong Xu, Lei Zhu, Yiliang Chen, Yongping Dong, Liang Xu. Ligand-Enabled ortho-Selective C–H Olefination of Tertiary Aniline Derivatives. Organic Letters 2024, 26
(23)
, 4877-4881. https://doi.org/10.1021/acs.orglett.4c01315
- Guoshuai Li, Yifei Yan, Jinghong Tang, Qingxue Ma, Jun Huang, Xiaohua Xu, Zhong Jin. Regiodivergent Remote C–H Functionalization by Tuning Template Geometry. Organic Letters 2024, 26
(22)
, 4733-4737. https://doi.org/10.1021/acs.orglett.4c01460
- Soumya Kumar Sinha, Aniket Gholap, Yazhinimuthu C M, Anirban Pal, Anant R. Kapdi, Debabrata Maiti. Generating the Pd-catalyzed δ C–H chalcogenation of aliphatic picolinamides: systematically decreasing the bias. Chemical Science 2025, 16
(18)
, 7936-7945. https://doi.org/10.1039/D4SC07897G
- Wei Zhou, Lei Zhang, Dan-Yang Liu, Xiaosi Ma, Jie Zhang, Jiajia Kang. Comparison of Phosphonium and Sulfoxonium Ylides in Ru(II)-Catalyzed Dehydrogenative Annulations: A Density Functional Theory Study. Molecules 2025, 30
(9)
, 1883. https://doi.org/10.3390/molecules30091883
- Xiao‐Ping Gong, Heng Yue, Ning Liang, Yu‐Yong Luan, Rui‐Qiang Jiao, Xi Chen, Yan‐Chong Huang, Tian Ding, Bo‐Sheng Zhang, Xue‐Yuan Liu, Yong‐Min Liang. Palladium‐Catalyzed Meta C─H Alkoxylation and Amidation via Polarity Reversal of Nucleophilic Reagents. Angewandte Chemie International Edition 2025, 64
(19)
https://doi.org/10.1002/anie.202501648
- Xiao‐Ping Gong, Heng Yue, Ning Liang, Yu‐Yong Luan, Rui‐Qiang Jiao, Xi Chen, Yan‐Chong Huang, Tian Ding, Bo‐Sheng Zhang, Xue‐Yuan Liu, Yong‐Min Liang. Palladium‐Catalyzed Meta C─H Alkoxylation and Amidation via Polarity Reversal of Nucleophilic Reagents. Angewandte Chemie 2025, 137
(19)
https://doi.org/10.1002/ange.202501648
- Siyeon Jeong, Chaerin Lee, Jung Min Joo. Synergistic Palladium/Silver/Ligand Catalysis for C−H Alkenylation of 2,1,3‐Benzofused Heterodiazoles. Advanced Synthesis & Catalysis 2025, 367
(4)
https://doi.org/10.1002/adsc.202401139
- Cintya Pinilla, Mario García-Zarza, Ana C. Albéniz. Metal–ligand cooperation and synergistic palladium catalysis for the dual ligand system [2,2′-bipyridin]-6(1
H
)–one/PCy
3
: milder conditions for the undirected C–H arylation of arenes. Organic Chemistry Frontiers 2025, 12
(2)
, 467-477. https://doi.org/10.1039/D4QO01877J
- Jyotirmoy Dey, Manuel van Gemmeren. Late-Stage C–H Deuteration of Organic Compounds via Ligand-Enabled Palladium-Catalyzed Hydrogen Isotope Exchange. Synlett 2024, 35
(19)
, 2191-2200. https://doi.org/10.1055/s-0042-1751566
- Song Liu, Dianmin Zhang, Yue Gong, Lianli Ma, Li Li, Wei Chen. π–π stacking assisted regioselectivity regulation in palladium-catalyzed cyclization reactions: a theoretical study. RSC Advances 2024, 14
(51)
, 38285-38292. https://doi.org/10.1039/D4RA06552B
- Mei-Zhu Bao, Xiao-Ying Pan, Wen-Rong Wu, Lin Xiao, Jidan Liu, Xu-Ge Liu, Shang-Shi Zhang, Limin Zhao. Metal-catalyzed divergent synthesis from ylides with 3-arylbenzo[
d
][1,2,3]triazin-4(3
H
)-ones. Chemical Communications 2024, 60
(88)
, 12928-12931. https://doi.org/10.1039/D4CC04309J
- Kazuki Tabaru, Yasushi Obora. Pd-Catalyzed Oxidative Functionalization of Alkenes, Arenes, and 1,3-Dienes Using Molecular Oxygen as the Terminal Oxidant. Synlett 2024, 35
(16)
, 1861-1871. https://doi.org/10.1055/a-2227-1020
- Mengjun Wang, Jun Jia, Zhaodong Meng, Jing Xia, Xinyan Hu, Fei Xue, Huiping Peng, Xiangmin Meng, Jun Yi, Xiaolan Chen, Jun Li, Yuzheng Guo, Yong Xu, Xiaoqing Huang. Plasmonic Pd-Sb nanosheets for photothermal CH
4
conversion to HCHO and therapy. Science Advances 2024, 10
(36)
https://doi.org/10.1126/sciadv.ado9664
- Jun Huang, Jinghong Tang, Yifei Yan, Zelin Liu, Siquan He, Zhong Jin. Palladium-catalysed directed remote
meta
-C–H functionalization of arenes using a cyclopentenyl-pyridyl template. New Journal of Chemistry 2024, 48
(34)
, 15172-15178. https://doi.org/10.1039/D4NJ02945C
- Jian Yao, Can Zhao, Lili Shao, Xiaohong Huo, Xiaoming Wang. Synergistic asymmetric diarylation of tethered alkenes via C–H functionalization of simple (hetero)arenes. Science China Chemistry 2024, 67
(8)
, 2710-2718. https://doi.org/10.1007/s11426-024-2059-y
- Jyotirmoy Dey, Simon Kaltenberger, Manuel van Gemmeren. Palladium(II)‐katalysierte nicht‐dirigierte late‐stage C(sp
2
)−H Deuterierung von Heteroaromaten ermöglicht über einen Multi‐Substrat‐Screening‐Ansatz. Angewandte Chemie 2024, 136
(27)
https://doi.org/10.1002/ange.202404421
- Jyotirmoy Dey, Simon Kaltenberger, Manuel van Gemmeren. Palladium(II)‐Catalyzed Nondirected Late‐Stage C(sp
2
)−H Deuteration of Heteroarenes Enabled Through a Multi‐Substrate Screening Approach. Angewandte Chemie International Edition 2024, 63
(27)
https://doi.org/10.1002/anie.202404421
- Jeanne Fichez, Maria I. Lapuh, Lina Truong, Hassan Oulyadi, Floris Buttard, Tatiana Besset. Selectivity Switch in Non‐Directed Palladium‐Catalyzed C−H Olefination of Chlorobenzene Derivatives. Advanced Synthesis & Catalysis 2024, 366
(12)
, 2811-2822. https://doi.org/10.1002/adsc.202400316
- Aboubakr Hamad, Michał Mrozowicz, Yuanhao Xie, Tobias Ritter. Regioselective Double C–H Functionalization of Arenes via Aryl Thianthrenium Salt Analogues. Synlett 2024, 35
(09)
, 1028-1032. https://doi.org/10.1055/s-0043-1763625
- Eunsu Kang, Jung Min Joo. Pyrazolopyridine Ligands in Transition-Metal-Catalyzed C–C and C–Heteroatom Bond-Forming Reactions. Synthesis 2024, 56
(10)
, 1549-1562. https://doi.org/10.1055/s-0043-1763620
Article Views are the COUNTER-compliant sum of full text article downloads since November 2008 (both PDF and HTML) across all institutions and individuals. These metrics are regularly updated to reflect usage leading up to the last few days.
Citations are the number of other articles citing this article, calculated by Crossref and updated daily. Find more information about Crossref citation counts.
The Altmetric Attention Score is a quantitative measure of the attention that a research article has received online. Clicking on the donut icon will load a page at altmetric.com with additional details about the score and the social media presence for the given article. Find more information on the Altmetric Attention Score and how the score is calculated.