Answer:
![m=25.20gNO](https://img.qammunity.org/2022/formulas/chemistry/college/fmomt7rkm7j3dnmzoapjsuar6jwgpimjwz.png)
Step-by-step explanation:
Hello!
In this case, since the STP conditions are known as 273.15 K of temperature and 1.00 atm of pressure, we can use the ideal gas equation to compute the moles of NO gas first:
![PV=nRT\\\\n=(PV)/(RT)=(1.00atm*18.82L)/(0.08206(atm*L)/(mol*K)*273.15K)=0.8396molNO](https://img.qammunity.org/2022/formulas/chemistry/college/33f0rd85r7gshef20d4db8oimzo7hqeang.png)
Next, since the molar mass of NO is 30.01 g/mol the resulting mass in grams is:
![m=0.8396 molNO*(30.01gNO)/(1molNO)\\\\m=25.20gNO](https://img.qammunity.org/2022/formulas/chemistry/college/kvlogca0a4aj98cn34g8kcifgil3gnq1ly.png)
Which has four significant figures.
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