PofoliaPofolia ile paylaşıldı

ACS Organic & Inorganic Au· 2026Q1

Çözücü Kafesi Kontrollü Radikal Akışı ve Reaktif Adükt Ara Ürünleri Azoyla Başlatılan Oksidasyonu Yönetir

Solvent-Cage-Controlled Radical Flux and Reactive Adduct Intermediates Govern Azo-Initiated Oxidation

Giacomo Zuccon, Dilek Eltemur, S. DaRonco, Edoardo Longo ve diğerleri

Kısa özet

Azo ile başlatılan oksidasyon, basit süpürme yerine çözücü kafesi dinamikleri ve reaktif ara ürünler tarafından yönetilen, akış kontrollü ve çok adımlı bir süreçtir; AAPH kaynaklı radikallerin kafesten kaçma oranı yalnızca %35'tir.

Yapay zekâ ile başlık ve abstract'tan üretildi; tam metin okunmaz.

Ana noktalar

  • Azo ile başlatılan oksidasyon, doğrudan süpürme yerine reaktif radikal adükt ara ürünleri yoluyla ilerler.
  • İmidazolidin heterosiklleri anahtar ara ürünler olarak yapısal olarak karakterize edildi.
  • AAPH kaynaklı radikaller için çözücü kafesi kaçış verimliliği deneysel olarak yaklaşık %0.35 olarak belirlendi.
  • Etkili radikal akışı, başlatıcı (AAPH) tüketim hızından ayrılmıştır.

Yapay zekâ ile başlık ve abstract'tan üretildi; tam metin okunmaz.

Özet (abstract)

Abstract Radical-mediated oxidation underlies processes ranging from oxidative stress in biological systems to antioxidant evaluation in food and pharmaceutical chemistry. In widely used azo-initiated systems such as those based on 2,2′-azobis (2-amidinopropane) (AAPH), radical flux is typically assumed to directly follow initiator decomposition, and antioxidant activity is interpreted as a single-step radical-scavenging process. However, the extent to which solvent-cage recombination and reactive intermediates modulate the effective radical flux and overall reaction kinetics remains unresolved. Here, we combine quantitative solution NMR spectroscopy with LC-MS to establish a kinetic and mechanistic framework for AAPH-induced oxidation of cinnamic acid derivatives. We show that classical single-step scavenging models fail to capture the experimentally observed concentration-dependent kinetics. Instead, oxidation proceeds through the formation of multiple covalent radical adducts that act as kinetically competent and reactive intermediates. Through complementary NMR, high-resolution mass spectrometry (HRMS), and LC-MS/MS analyses, we achieve direct structural characterization of these intermediates, revealing the formation of imidazolidine-type heterocycles arising from radical addition to the α,β-unsaturated side chain. By globally analyzing the time-dependent evolution of AAPH, its hydrolysis products, and radical recombination and disproportionation products, we obtained an experimentally constrained solvent-cage escape efficiency for AAPH-derived radicals (f ≈ 0.35), demonstrating that the effective radical flux is strongly decoupled from the overall rate of AAPH consumption. These results establish AAPH-mediated oxidation of cinnamic acid derivatives as a flux-controlled, multistep radical process governed by solvent-cage dynamics and intermediate reactivity. More broadly, our results redefine how radical flux and antioxidant activity are interpreted in azo-initiated systems, demonstrating that both are governed by hidden kinetic processes rather than simple scavenging. This study establishes a general NMR- and MS-based quantitative framework for probing radical reactivity in complex environments and challenges conventional interpretations of widely used antioxidant assays and radical-based screening platforms.

Yazarların özeti; kaynağından alınmıştır. ACS Organic & Inorganic Au, 2026 · DOI ↗

ÇıkarımlarUygulamada
Makaleye SorUygulamada

Devamı Pofolia uygulamasında

Çıkarımlar ve makaleye soru sorma; ilgi alanına göre her gün yeni özetler. Ücretsiz.

Web'de giriş yaparak aç

Alan: Organik Kimya

Organic ChemistryChemistry