TY - JOUR
T1 - Marine upper-tropospheric rapid particle formation dominated by methanesulfonic acid
AU - Ning, An
AU - Mao, Lizhuo
AU - Zhao, Bin
AU - Zu, Haotian
AU - Shen, Jiewen
AU - Zhao, Yonggui
AU - Li, Jing
AU - Deng, Xiucong
AU - Liu, Ling
AU - Zhang, Haijie
AU - Francisco, Joseph S.
AU - Wang, Shuxiao
AU - Zhang, Xiuhui
N1 - Publisher Copyright:
Copyright © 2026 the Author(s).
PY - 2026/6/2
Y1 - 2026/6/2
N2 - New particle formation (NPF) in the marine upper troposphere sustains one of the largest global aerosol reservoirs that seeds cloud condensation nuclei in the lower troposphere, with far-reaching implications for Earth’s radiative balance and climate. However, the underlying NPF mechanisms remain elusive, constituting a major uncertainty in climate projections. Here, we show that methanesulfonic acid (MSA), long considered only as a key boundary-layer precursor, dominates upper-tropospheric NPF across major oceans. Quantum-chemical and cluster dynamics simulations reveal that MSA enhances sulfuric acid (H2SO4)–ammonia (NH3) nucleation rates by 1 to 3 orders of magnitude, far surpassing the well-established nitric acid (HNO3)–H2SO4–NH3 mechanism, owing to stronger intracluster hydrogen bonds and low temperatures that stabilize clusters and render nucleation nearly barrierless. Further global three-dimensional modeling constrained by field measurements confirms that the proposed H2SO4–MSA–NH3 nucleation pathway dominates the upper-tropospheric NPF over the Pacific, Atlantic, and Indian Oceans. Notably, this pathway contributes ~40% of global nucleation-induced Aitken- and accumulation-mode aerosols at 0.5 to 4 km altitudes, where most cloud water resides, and yields a net top-of-atmosphere radiation forcing of −1.75 W m−2 (~68% of the nucleation-induced response). This study offers a detailed mechanistic insight into marine upper-tropospheric NPF and improves representation of aerosol–cloud interactions, thereby reducing uncertainties in global climate projections.
AB - New particle formation (NPF) in the marine upper troposphere sustains one of the largest global aerosol reservoirs that seeds cloud condensation nuclei in the lower troposphere, with far-reaching implications for Earth’s radiative balance and climate. However, the underlying NPF mechanisms remain elusive, constituting a major uncertainty in climate projections. Here, we show that methanesulfonic acid (MSA), long considered only as a key boundary-layer precursor, dominates upper-tropospheric NPF across major oceans. Quantum-chemical and cluster dynamics simulations reveal that MSA enhances sulfuric acid (H2SO4)–ammonia (NH3) nucleation rates by 1 to 3 orders of magnitude, far surpassing the well-established nitric acid (HNO3)–H2SO4–NH3 mechanism, owing to stronger intracluster hydrogen bonds and low temperatures that stabilize clusters and render nucleation nearly barrierless. Further global three-dimensional modeling constrained by field measurements confirms that the proposed H2SO4–MSA–NH3 nucleation pathway dominates the upper-tropospheric NPF over the Pacific, Atlantic, and Indian Oceans. Notably, this pathway contributes ~40% of global nucleation-induced Aitken- and accumulation-mode aerosols at 0.5 to 4 km altitudes, where most cloud water resides, and yields a net top-of-atmosphere radiation forcing of −1.75 W m−2 (~68% of the nucleation-induced response). This study offers a detailed mechanistic insight into marine upper-tropospheric NPF and improves representation of aerosol–cloud interactions, thereby reducing uncertainties in global climate projections.
KW - marine aerosol
KW - methanesulfonic acid
KW - new particle formation
KW - nucleation mechanism
KW - upper troposphere
UR - https://www.scopus.com/pages/publications/105040512144
U2 - 10.1073/pnas.2606521123
DO - 10.1073/pnas.2606521123
M3 - Article
C2 - 42213761
AN - SCOPUS:105040512144
SN - 0027-8424
VL - 123
JO - Proceedings of the National Academy of Sciences of the United States of America
JF - Proceedings of the National Academy of Sciences of the United States of America
IS - 22
M1 - e2606521123
ER -