Abstract:
A series of ZrO
2 nanoparticles with different particle sizes and different crystalline phases were prepared using coprecipitation and hydrothermal methods. Their physico-chemical properties were characterized by N
2 physisorption, XRD, TEM, Raman spectroscopy, XPS, and NH
3-TPD techniques. The catalytic performances for syngas conversion were tested at 400 ℃, 3 MPa, gas hourly space velocity (GHSV) of 500 mL/(g
cat·h), and H
2/CO/Ar (volume ratio)=5:5:1. It was found that syngas can be directly converted into hydrocarbons over ZrO
2 nanoparticles. The hydrocarbon products are mainly composed of isomerized olefins, cyclenes, and aromatics. The selectivity of C
5+ hydrocarbons is up to 48%. Moreover, the aromatic concentration in C
5+ ranges from 30% to 53% depending on ZrO
2 structures. It is also found that the monoclinic ZrO
2 shows higher activity than the tetragonal one. Monoclinic ZrO
2 with larger specific surface area and acid amount show highest CO conversion as well as the yield of target products, but the monoclinic ZrO
2 with lager particle size has the higher acid surface density and results in the higher aromatic selectivity. Consequently, acidity is the key factor for CO conversion. And high acid surface density promotes the formation of aromatics but acid amount affects the activity.