혼합금속산화물에 담지된 Pd-Rh의 허니컴 촉매에서 NO와 N2O의 동시 환원 - H2 또는 CO 환원제의 사용

Simultaneous Catalytic Reduction of NO and N2O over Pd-Rh Supported Mixed Metal Oxide Honeycomb Catalysts - Use of H2 or CO as a Reductant

  • 투고 : 2008.04.10
  • 심사 : 2009.01.18
  • 발행 : 2009.02.28

초록

혼합금속산화물에 담지된 Pd-Rh 허니컴 촉매 상에서 NO와 $N_2O$를 동시에 저감하기 위한 반응 온도를 낮추면서 각각의 반응물에 대한 전환율을 높이기 위하여, 환원제로 수소 또는 일산화탄소 사용에 대해 조사하였다. 각각의 환원제 사용 시, NO와 $N_2O$의 전환율에 대한 반응 조건의 영향을 조사하기 위해 반응온도, 각 환원제와 산소의 농도, NO와 $N_2O$ 간의 농도 비율 등을 변화시켰다. 먼저 수소를 환원제로 사용하는 경우, 산소의 부재시 $200^{\circ}C$ 미만의 저온에서 50% 이상의 NO와 $N_2O$ 전환율을 얻을 수 있었다. 한편, 일산화탄소를 환원제로 사용하는 경우에는 NO와 $N_2O$ 전환율이 각각 $200^{\circ}C$$300^{\circ}C$ 이상에서 증가하기 시작하였다. 그러나, 두 가지 환원제 모두의 경우에서, 반응 가스내에 산소 농도가 증가함에 따라 $N_2O$와 NO 전환율에 감소하였다. 결과적으로 일산화탄소 환원제에 비해, 수소 환원제가 상대적으로 저온에서 NO와 $N_2O$를 동시에 저감할 수 있으며, 산소 농도에 의한 영향을 덜 받는 것으로 나타났다. 반면, 반응물내 $N_2O$와 NO 농도비에 의한 NO와 $N_2O$ 전환율의 영향은 환원제의 종류에 크게 영향을 받지 않는 것으로 관찰되었다. 저온에서 NO와 $N_2O$를 동시에 저감시키기 위해서는 산소 분위기보다는 수소 분위기에서 촉매를 전처리하는 것이 보다 효과적인 것으로 나타났다.

In order to lower a reaction temperature with high conversions for simultaneous catalytic reduction of NO and $N_2O$ over Pd-Rh supported mixed metal oxide honeycomb catalysts, $H_2$ or CO was utilized as a reductant. When using the reductants, the effects of reaction conditions were examined in NO and $N_2O$ conversions, where reaction temperatures, concentrations of the reductants and oxygen and the concentration ratio of $N_2O$ to NO were varied. In using $H_2$ reductant, larger than 50% of NO and $N_2O$ conversions was observed at the temperatures below $200^{\circ}C$ in absence of $O_2$. In using CO reductant, NO and $N_2O$ conversions increased from the temperatures higher than $200^{\circ}C$ and $300^{\circ}C$, respectively. However, in use of both reductants, NO and $N_2O$ conversions decreased with increasing oxygen concentration. As a result, $H_2$ reductant could reduce simultaneously NO and $N_2O$ at relatively lower reaction temperature than CO. Also, NO and $N_2O$ conversions were less influenced by using $H_2$ reductant than CO one. Concentration ratio between NO and $N_2O$ did not affect their conversions regardless the type of reductants. Pretreatment of the catalyst in $H_2$ was more effective in simultaneous reduction of NO and $N_2O$ at low reaction temperature than that in $O_2$.

키워드

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