All four ionic liquids achieve a quasi-ionic regime with drop contributions ranging from 0.5% to 3% of total current, but none reach a purely ionic emission mode under studied conditions.
Negatively electrified liquid cone jets supported on capillary tubes with 30–36 \, x03BC m tip diameters are investigated in vacuo with four ionic liquids (ILs) selected for their high electrical conductivity and low viscosity. All four use the same cation 1-ethyl-3-methylimidazolium ^+ (EMI^+), paired with the four anions SCN^-, N (CN) ₂^-, C (CN) ₃^- and BF₄^-. Purely ionic (PI) emissions are not unambiguously achieved with any of the four, but are closely approached by all under a broad range of conditions. In this unusual quasi-ionic (QI) regime, drops contribute minimally to the current (0. 5 %–3 %) but substantially to the mass flow. A sharp QI PI transition below a critical liquid flow rate has been demonstrated for capillary emitters by Caballero-Perez et al. (2025) J. Propul. Power, for 1-butyl-3-methylimidazolium-C (CN) ₃ (BMI-C (CN) ₃) by using 15 x03BC m capillary tips able to stabilise unusually small liquid flow rates. None of their other 3 ILs achieves the QI regime, indicating the singularity of BMI-C (CN) ₃ and our four ILs. We focus on the peculiarities of the QI regime, the likely mechanism for the QI PI transition and argue that ILs reaching the QI regime will probably also attain the PI regime when sprayed from sufficiently small capillary tips. Paradoxically, while high conductivity and low viscosity appear to favour the QI mode, for a liquid operating in this regime, inverting these properties by lowering the emitter temperature appears to better approach the PI regime.
Perez-Lorenzo et al. (Wed,) conducted a other in Quasi-ionic emission regime of ionic liquids (n=4). Ionic Liquids (EMI-SCN, EMI-N(CN)2, EMI-BF4, EMI-C(CN)3) was evaluated on Percentage of drop contribution to the total current. All four ionic liquids achieve a quasi-ionic regime with drop contributions ranging from 0.5% to 3% of total current, but none reach a purely ionic emission mode under studied conditions.
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